WO2022041705A1 - 光纤连接器插头、光纤适配器、连接器组件及通信设备 - Google Patents
光纤连接器插头、光纤适配器、连接器组件及通信设备 Download PDFInfo
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- WO2022041705A1 WO2022041705A1 PCT/CN2021/082377 CN2021082377W WO2022041705A1 WO 2022041705 A1 WO2022041705 A1 WO 2022041705A1 CN 2021082377 W CN2021082377 W CN 2021082377W WO 2022041705 A1 WO2022041705 A1 WO 2022041705A1
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- WIPO (PCT)
- Prior art keywords
- optical fiber
- connector plug
- locking
- sleeve
- fiber connector
- Prior art date
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Images
Classifications
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/24—Coupling light guides
- G02B6/36—Mechanical coupling means
- G02B6/38—Mechanical coupling means having fibre to fibre mating means
- G02B6/3807—Dismountable connectors, i.e. comprising plugs
- G02B6/381—Dismountable connectors, i.e. comprising plugs of the ferrule type, e.g. fibre ends embedded in ferrules, connecting a pair of fibres
- G02B6/3826—Dismountable connectors, i.e. comprising plugs of the ferrule type, e.g. fibre ends embedded in ferrules, connecting a pair of fibres characterised by form or shape
- G02B6/3831—Dismountable connectors, i.e. comprising plugs of the ferrule type, e.g. fibre ends embedded in ferrules, connecting a pair of fibres characterised by form or shape comprising a keying element on the plug or adapter, e.g. to forbid wrong connection
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/24—Coupling light guides
- G02B6/36—Mechanical coupling means
- G02B6/38—Mechanical coupling means having fibre to fibre mating means
- G02B6/3807—Dismountable connectors, i.e. comprising plugs
- G02B6/389—Dismountable connectors, i.e. comprising plugs characterised by the method of fastening connecting plugs and sockets, e.g. screw- or nut-lock, snap-in, bayonet type
- G02B6/3893—Push-pull type, e.g. snap-in, push-on
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/24—Coupling light guides
- G02B6/36—Mechanical coupling means
- G02B6/38—Mechanical coupling means having fibre to fibre mating means
- G02B6/3807—Dismountable connectors, i.e. comprising plugs
- G02B6/381—Dismountable connectors, i.e. comprising plugs of the ferrule type, e.g. fibre ends embedded in ferrules, connecting a pair of fibres
- G02B6/3818—Dismountable connectors, i.e. comprising plugs of the ferrule type, e.g. fibre ends embedded in ferrules, connecting a pair of fibres of a low-reflection-loss type
- G02B6/3821—Dismountable connectors, i.e. comprising plugs of the ferrule type, e.g. fibre ends embedded in ferrules, connecting a pair of fibres of a low-reflection-loss type with axial spring biasing or loading means
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/24—Coupling light guides
- G02B6/36—Mechanical coupling means
- G02B6/38—Mechanical coupling means having fibre to fibre mating means
- G02B6/3807—Dismountable connectors, i.e. comprising plugs
- G02B6/381—Dismountable connectors, i.e. comprising plugs of the ferrule type, e.g. fibre ends embedded in ferrules, connecting a pair of fibres
- G02B6/3825—Dismountable connectors, i.e. comprising plugs of the ferrule type, e.g. fibre ends embedded in ferrules, connecting a pair of fibres with an intermediate part, e.g. adapter, receptacle, linking two plugs
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/24—Coupling light guides
- G02B6/36—Mechanical coupling means
- G02B6/38—Mechanical coupling means having fibre to fibre mating means
- G02B6/3807—Dismountable connectors, i.e. comprising plugs
- G02B6/3833—Details of mounting fibres in ferrules; Assembly methods; Manufacture
- G02B6/3847—Details of mounting fibres in ferrules; Assembly methods; Manufacture with means preventing fibre end damage, e.g. recessed fibre surfaces
- G02B6/3849—Details of mounting fibres in ferrules; Assembly methods; Manufacture with means preventing fibre end damage, e.g. recessed fibre surfaces using mechanical protective elements, e.g. caps, hoods, sealing membranes
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B6/00—Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
- G02B6/46—Processes or apparatus adapted for installing or repairing optical fibres or optical cables
- G02B6/47—Installation in buildings
Definitions
- the present application relates to the field of optical communication, in particular to an optical fiber connector plug, an optical fiber adapter, a connector assembly and a communication device.
- optical fiber transmission is increasingly used in communication systems.
- the fiber drawn from the computer room and the home fiber are connected in the fiber box to realize the laying of the optical network to each household.
- the number of ports of each fiber optic box has increased. How to arrange more fiber optic connection ports in a limited space? For each fiber optic connector plug, a fiber optic adapter needs to be inserted and locked. , How to design the locking structure, which can save the operation space, is the direction that the industry pays attention to.
- Embodiments of the present application provide an optical fiber connector plug, an optical fiber adapter, a connector assembly, and a communication device.
- the design of the optical fiber connector plug can save operating space, which is beneficial for communication devices to arrange more optical fiber connections in a limited space. port.
- the present application provides an optical fiber connector plug, including an optical fiber and a ferrule fixed to the front end of the optical fiber, a main shell qualified and a first locking structure, the main shell is sleeve-shaped and sleeved on the optical fiber.
- the present application realizes a straight-in and straight-out optical fiber connector insertion path through the first locking structure provided on the outer surface of the main casing, which is beneficial to saving operation space.
- the first locking structure includes a sliding member and a locking portion, the locking portion is fixed on the outer surface of the main casing, and the sliding member is slidably connected between the first position and the second position to the main casing; along the axial direction of the main casing, the locking portion is located between the sliding member and the ferrule; when the sliding member is in the first position, the sliding member The second locking structure is locked together with the locking portion; when the sliding member is located at the second position, the locking portion and the second locking structure are unlocked.
- the second locking structure on the optical fiber adapter is jointly locked by the cooperation of the sliding member and the locking portion, and the sliding member slides along the axial direction to realize locking and unlocking, that is, the user only needs to drive the sliding member to move in the axial direction.
- the operation space is also the peripheral space on the side corresponding to the optical fiber connector plug, such as the upper space of the optical fiber connector plug, only need to drive the sliding The piece slides on the main housing.
- the present application does not need to reserve operating space on the peripheral periphery of the optical fiber connector plug (the space surrounding the periphery of the main housing of the optical fiber connector plug).
- the present application not only realizes the miniaturized design of the optical fiber connector plug, but also can More fiber optic connector plugs are configured in communication equipment with multi-fiber interface, and the arrangement of fiber optic connector plugs can be denser, even if there is no space between adjacent fiber optic connector plugs, it will not affect a single fiber optic connector plug. plugging, locking and unlocking.
- the optical fiber connector plug further includes a sealing structure disposed on the outer surface of the main housing, and along the axial direction of the main housing, the sealing structure is positioned at the first locking position. Between the structure and the ferrule, the sealing structure is used for sealing connection with the inner surface of the optical fiber adapter.
- the present application defines an optical fiber connector plug for outdoor use.
- the sealing structure and the first locking structure Through the cooperation of the sealing structure and the first locking structure, the structure of the optical fiber connector plug is simplified, and only one connector located between the first locking structure and the ferrule needs to be configured
- the sealing structure between the two is beneficial to realize the miniaturized structure of the optical fiber connector plug, and the first locking structure is matched with the optical fiber adapter through the direct insertion method, so that the optical fiber connector plug can have a small operating space, reducing the number of optical fibers The space occupancy of the connector plug.
- the locking portion is a fixing block protruding to the outer surface of the housing body, the locking portion is used to cooperate with the slot of the second locking structure, the A locking groove is formed between the sliding member and the main casing, the locking groove is used for cooperating with the elastic arm of the second locking structure, and the opening position of the locking groove is located at one end of the sliding member and the main housing, the sliding member includes a mating surface formed on the inner wall of the locking groove, the mating surface faces the main housing, the mating surface includes a first area and a second area, The first area is located between the second area and the opening of the locking groove, and the vertical distance between the first area and the main casing is greater than the second area and the main casing vertical distance between.
- the matching surface is designed to be similar to a double-step or a structure extending obliquely relative to the axial direction.
- the matching surface and the second lock In the state where the holding parts are matched, the matching surface presses the elastic arm of the second locking structure against the locking groove, the first area and the second area both generate a pressing force on the elastic arm, and the first area and the second area are in the lock groove.
- the double-step or inclined extension structure is formed in the radial direction, which not only helps to increase the contact area between the mating surface and the elastic arm, but also realizes the function of radially withholding the elastic arm, and the buckle and pressing force of the elastic arm can be Make sure that the elastic arm is firmly locked in the locking groove and is not easy to be pulled out.
- the axial extension of the mating surface is the first size
- the axial extension of the first region is the second size.
- the second size is smaller than the first size, and even the second size may be smaller than the first size.
- Half. In the locked state the mutual abutting region between the mating surface and the elastic arm may be the region where the entire mating surface is located.
- the first area and the second area are When the elastic arms are separated and the elastic arms are not pressed, the unlocking is realized. It can be seen that during the unlocking process, the moving stroke of the slider only needs to be the distance of the second size, and does not need to move the distance of the first size. Therefore, this embodiment has the advantages of stable locking and easy unlocking.
- the present application can ensure the accurate positioning of the sliding member on the main casing, and can improve the efficiency of locking and unlocking.
- the mating surface is stepped, and the extension direction of the first region on the slider from the front end surface to the rear end surface is parallel to the central axis of the slider.
- the mating surface is in the shape of an inclined surface, and an extension direction of the first region on the slider from the front end surface to the rear end surface forms an included angle with the central axis of the slider.
- the first region is provided with an etched structure, or the second region is provided with an etched structure, or both the first region and the second region are provided with an etched structure.
- the matching surface is provided with a groove, and the groove is used to cooperate with the protrusion on the elastic arm, and the groove can be provided in the first area or the second area.
- Both the etched structure and the structural arrangement of the grooves on the mating surface are beneficial to increase the locking force.
- the sliding member includes a first plate member, a second plate member, a third plate member and a fourth plate member that are connected in sequence, the first plate member and the third plate member are arranged opposite to each other, and the second plate member It is arranged opposite to the fourth plate.
- the mating surfaces are provided on the inner surfaces of the first plate and the third plate.
- the first plate member and the third plate member are convex arc structures, and the outer surfaces of the first plate member and the third plate member are provided with anti-skid structures.
- the second plate and the fourth plate are in the form of flat plates, the second plate and the fourth plate are arranged in parallel with each other, and the distance between the second plate and the fourth plate is smaller than that between the first plate and the third plate.
- the second plate and the fourth plate can be in direct contact with the outer surface of the main shaft or connected through a guide structure, and a gap will be formed between the first plate and the third plate and the main shaft. It can be a locking groove for accommodating the second locking structure of the optical fiber adapter or a receiving space for accommodating the second elastic element and the fixing seat.
- the inner surface of the sliding member is further provided with a second sliding guide structure, and the second sliding guide structure is used to cooperate with the first sliding guide structure on the main shaft.
- the second sliding guide structure is located on the inner surfaces of the second plate and the fourth plate.
- the second sliding guide structure includes a second guide portion and a second limit portion, the second limit portion is located on the side of the second guide portion away from the front end surface of the slider, and the second guide portion is used for It cooperates with the first guide part on the outer surface of the main shaft, and the second limit part is used to cooperate with the first limit part on the outer surface of the main shaft.
- the second limiting step is used to cooperate with the first limiting step of the first limiting portion on the main shaft to define a boundary position where the sliding member slides toward the front end of the main shaft.
- the second limiting portion and the second guiding portion form a T-shaped structure.
- the second limit portion and the second guide portion are guide groove structures recessed on the inner surface of the slider.
- the second limit portion and the second guide portion may also be protruding sliders.
- the guide rail structure provided on the inner surface.
- the inner surface of the sliding member is provided with a stepped positioning surface facing the rear end surface of the sliding member for positioning the second elastic member.
- the optical fiber connector plug provided in this embodiment further includes a dust cap
- the dust cap includes a cap body and an elastic arm
- the inside of the cap body is hollow and has an opening
- the elastic arm is formed at the opening position of the cap body.
- the cap body is a center-symmetric structure, with a central axis, and the number of elastic arms is two and is arranged on both sides of the central axis.
- the end of the elastic arm away from the cap body is provided with a first matching portion and a second matching portion, the first matching portion is located between the second matching portion and the elastic arm, and the vertical relationship between the first matching portion and the central axis is The distance is greater than the distance between the second fitting portion and the central axis.
- the dust cap cover is provided with the outer periphery of the front frame sleeve, and the elastic arm extends into the locking groove formed between the mating surface of the sliding piece and the outer surface of the main casing, and the elastic arm and the The mating of the surfaces, the first mating part is in contact with the first area, the second mating part is in contact with the second area, and the dust cap is fixed to the dust cap by the clamping force of the mating face of the first mating part and the second mating part.
- Fiber Optic Connector Plugs When the dust cap needs to be removed, move the slider towards the end of the main shaft, so that the first area leaves the first matching part, and the second area leaves the second matching part. In the radial direction, the first area and the second matching part When facing up, the unlocking between the fiber optic connector plug and the dust cap can be achieved.
- the locking portion includes an elastic arm and a clamping block, one end of the elastic arm is fixedly connected to the main casing, and the elastic arm and the main casing can be connected in an integrated structure. , can also be a split structure and assembled into one.
- the clamping block is fixedly connected to the other end of the elastic arm and protrudes from the surface of the elastic arm away from the main casing, a gap is provided between the elastic arm and the main casing, and the sliding member It includes a sliding body slidably connected with the main housing and a resisting part connected to one end of the sliding body, the elastic arm is used to cooperate with the snap groove on the optical fiber adapter, and the resisting part can move to The elastic arm is pressed against the elastic arm in the gap, so that the elastic arm is held in the buckle groove.
- the outer surface of the main casing is further provided with a catch structure, and the catch structure is used for cooperating with the sliding piece to limit the sliding piece to the first position.
- the locking structure is a limit block protruding from the outer surface of the main casing
- the number of the locking structure is two
- the locking structures are arranged at intervals, that is, a limiting groove is formed between the two locking structures.
- the sliding piece includes a sliding positioning structure, and the sliding positioning structure includes a connecting portion connected to the sliding body and a protrusion structure protruding from the connecting portion.
- the connecting portion is formed by setting a pair of strip-shaped slits on the sliding body.
- the connecting part is prone to radial elastic deformation under the action of external force, and the protrusion structure is used to cooperate with the clamping structure on the main shaft. a location.
- This embodiment provides another solution of the first locking structure.
- the elastic arm and the locking block arranged on the locking portion are matched with the locking groove of the second locking structure, and the resisting portion of the sliding member is used to resist.
- the elastic arm realizes the locking state between the first locking structure and the second locking structure.
- the blocking portion is also removed from the elastic arm by moving the sliding member to achieve unlocking.
- the clamping block is located on the side of the elastic arm away from the front end of the main housing, and the clamping block is located at the end of the elastic arm facing the slider.
- one end of the block corresponding to the resisting part is connected to the sliding body, which can be regarded as the root of the resisting part. ), so the structure of the locking block and the elastic arm of the present application cooperate with the position of the sliding member, which is beneficial to increase the locking force.
- the locking portion includes a locking arm, and a receiving space is provided between the locking arm and the outer surface of the main casing, and along the axial direction of the main casing, The opposite ends of the receiving space are both open-shaped, the locking arm is provided with a card slot or a card hole, the receiving space is used for receiving the second locking structure, the card groove or the card hole
- the sliding member includes a sliding body slidably connected with the main casing and a resisting portion connected to one end of the sliding body, the resisting portion can move to the receiving portion in the space and against the second locking structure.
- the opening at one end of the accommodating space is used to provide the second locking structure on the optical fiber adapter to extend into the accommodating space, and the opening at the other end of the accommodating space is used for the resisting part of the sliding element to move into the accommodating space.
- the second locking structure can be a connecting segment structure connected with a buckle portion (ie, an elastic arm structure with a buckle), and the resisting portion of the sliding member abuts the connecting portion to lock the buckle portion in the card slot or the card hole. , to achieve the locked state.
- a buckle portion ie, an elastic arm structure with a buckle
- the locking portion has a sleeve-like structure, and the inner surface of the locking portion is provided with a positioning groove, a locking groove and a button hole.
- the positioning grooves are used to cooperate with the outer surface connecting part of the main shaft to fixedly connect the locking part to the main shaft.
- the number of positioning grooves is two, which are symmetrically distributed on both sides of the central axis of the locking part.
- the button hole is located at the bottom of the locking groove, and the button hole is a through hole structure, so that the inner and outer surfaces of the locking portion are communicated.
- the extending direction of the locking groove is the axial direction of the locking portion, and an opening of the locking groove is formed at one end face of the locking portion.
- buttons and two locking grooves which are symmetrically distributed on the other two sides of the central axis of the locking portion.
- the locking part is sleeved on the main shaft, and the connecting part is snapped into the positioning groove to realize the connection between the locking part and the main shaft.
- the bottom wall of the locking groove and the main shaft form an accommodation space.
- the locking portion at the bottom wall of the locking slot constitutes the locking arm, it can be understood that the button hole is arranged on the locking arm, the button hole can be a structure of a card slot or a card hole, and the receiving space is formed in the locking arm. between the arm and the outer surface of the spindle.
- the accommodating space is used for accommodating the second locking structure of the optical fiber adapter, and the button hole is used for the matching of the second locking structure.
- the sliding member is elastically connected with the main casing, and the sliding member is maintained at the first position by elastic force.
- a limiting structure is provided between the sliding member and the main housing, and the limiting structure is used to limit the sliding member to the first position, and the limiting structure also The slider can be restrained in the second position.
- the main housing includes a sleeve-shaped main shaft, the main shaft includes opposite front ends and a rear end, the front end of the main shaft is connected to the front frame sleeve, and the main shaft receives a shelter.
- the optical fiber, the tail end is fixedly connected to the optical fiber, the tail end is provided with a through hole, the through hole penetrates the outer surface and the inner surface of the main shaft, and the through hole is used for filling glue to the optical fiber and the optical fiber. Between the inner surfaces of the main shaft, the fixation of the optical fiber and the main shaft is realized.
- the optical fiber includes a fiber core, a reinforcing layer wrapped around the periphery of the fiber core, and an outer layer wrapped around the periphery of the reinforcing layer, and part of the fiber core extends out of the reinforcing layer and is fixedly connected to the ferrule , part of the reinforcing layer is not wrapped by the outer layer, and the glue is used to fix the reinforcing layer and the main shaft.
- a through hole for glue filling is provided at the end of the main shaft, and the optical fiber is fixed by means of glue filling.
- the glue fills the gap between the reinforcement layer and the main shaft, the surface structure of the reinforcement layer itself is also used, and the reinforcement layer
- the surface has a glue filling space, so that the glue can fully contact the optical fiber and the spindle to improve the fixing effect, and by removing part of the material on the spindle (without adding any fixed structure), the fiber is fixed inside the spindle without occupying the outer space of the spindle , which is conducive to miniaturized design.
- the glue is filled between the main shaft and the optical fiber, and the sealed connection between the two can also be realized, and the sealing effect will not be bad due to the arrangement of the through hole.
- the optical fiber connector plug includes a main casing and a front frame sleeve sleeved on the periphery of the optical fiber, the main casing is in the shape of a sleeve, and the front frame sleeve is fixed to one end of the main casing and surrounds the main casing.
- the end face of the ferrule away from the optical fiber is the front end face of the ferrule
- the end face of the front frame sleeve away from the main casing is the front end face of the front frame sleeve
- the front end surface of the core is flush with the front end surface of the front frame sleeve, which can be understood as the front end surface of the ferrule and the front end surface of the front frame sleeve in the radial direction are aligned, or, in the axial direction, the front end surface of the ferrule is aligned.
- the front end surface is located between the front end surface of the front frame sleeve and the rear end surface of the front frame sleeve, and the rear end surface of the front frame sleeve is the end surface of the front frame sleeve facing the main casing;
- the A slot is formed between the front frame sleeve and the ferrule, the slot is used to accommodate the ferrule sleeve of the optical fiber adapter, and the end of the ferrule sleeve is inserted into the slot.
- the front end is inserted into the slot, and the radial size of the ferrule sleeve matches the radial size of the slot, that is, the radial size of the two can be equal or the size difference between them is to meet the machining tolerance and assembly clearance, that is to say
- the slot does not accommodate other components except the ferrule, and the ferrule is used to be inserted into the ferrule sleeve.
- the front end face of the front frame sleeve protects the front end face of the ferrule, which can prevent the front end face of the ferrule from being scratched.
- a slot for matching with the ferrule sleeve of the optical fiber adapter is formed between the inner side of the front frame sleeve and the ferrule, so that the front frame sleeve can protect the front face of the ferrule and cooperate with the optical fiber adapter.
- the outer periphery of the front frame sleeve does not need to be set again Other components, which can make the radial dimension of the optical fiber connector plug small enough, in the limited space of the communication equipment, more optical fiber connection ports can be arranged.
- the outer surface of the front frame sleeve is also the outer surface of the entire optical fiber connector plug, that is, there is only one front frame sleeve structural member on the periphery of the ferrule.
- the front end face of the sleeve) and the plug-in mating features are concentrated on the outer frame sleeve, which can not only reduce the number of parts, but also The structure of the optical fiber connector plug is simplified, and the miniaturized design of the radial size is also facilitated.
- the outer surface of the front frame sleeve is provided with a first guide structure, and the first guide structure is used to cooperate with a guide key on the optical fiber adapter.
- the outer surface of the front frame sleeve provided by the present application is in contact with the inner surface of the optical fiber adapter, and the first guide structure and the guide key can provide guidance during the insertion of the optical fiber connector plug into the optical fiber adapter.
- the first guide structure extends along the axial direction, and the optical fiber connector plug with the first guide structure extending in the axial direction can be inserted into or pulled out of the optical fiber adapter in a straight-in and straight-out manner.
- the insertion process does not have a rotating action, this design is beneficial to reduce the operating space around the fiber optic connector plug, when multiple fiber optic connector plugs are arranged side by side on the communication equipment, there is no need to reserve operation between adjacent fiber optic connector plugs Space, because of the in-line and straight-out operation, only axial space is required.
- the first guide structure is a groove structure provided on the outer surface of the front frame sleeve, that is, the first guide structure does not penetrate to the inner surface of the front frame sleeve.
- the front frame cover can be provided with a notch near the front end surface, and the notch can be set so that the front end surface forms a non-closed annular or at least two-section surface structure (for example, when the number of notches is two, the front end surface is divided into the first surface and the The second surface), in this embodiment, the first guide structure of the groove structure disposed on the outer surface of the front frame sleeve forms an opening toward the front end surface, and this opening is communicated with the gap, and the first guide structure and the gap It can provide an eye-catching reminder for the alignment of the insertion process of the optical fiber connector plug.
- the first guide structure penetrates the inner surface and the outer surface of the front frame sleeve, which can be understood as a cutout or hollow structure provided on the front frame sleeve.
- the first guide structure is protrudingly disposed on the outer surface of the front frame sleeve.
- the first guide structure can extend from the front end surface of the front frame sleeve to the rear end surface of the front frame sleeve, or can extend from the front end surface of the front frame sleeve to the middle position of the front frame sleeve, and the middle position refers to the It is the position between the front end surface and the rear end surface, not only the center position of the front end surface and the rear end surface, but also the position close to the front end surface or the position close to the rear end surface.
- the number of the first guiding structures may be one, two or more. Two or more first guide structures may be uniformly arranged on the outer surface of the front frame cover at intervals in the circumferential direction.
- the outer surface of the main housing is provided with a second guide structure, the second guide structure and the first guide structure are butted together, and are used together with the guide keys on the optical fiber adapter.
- the first guide structure and the second guide structure can be the same, for example, both of them are groove structures or notch structures or protruding structures, and the second guide structure and the second guide structure can be different, for example, the first guide structure is a groove structure, and the second guide structure is a groove structure.
- the second guide structure is a notch structure, or the first guide structure is a notch structure, and the second guide structure is a protruding structure.
- Setting the first guide structure (or the first guide structure combined with the second guide structure) can make the front frame sleeve have a striking reminder and guiding function during the process of docking the optical fiber connector plug with the optical fiber adapter, so as to facilitate the optical fiber connector plug Align with the fiber optic adapter, improve the accuracy of mating and docking, prevent the ferrule assembly of the fiber optic connector plug from being damaged and fail due to repeated collisions due to the wrong insertion of the fiber optic connector plug, and effectively increase the height of the fiber optic connector. service life of the plug.
- the front end surface of the front frame sleeve is a closed annular structure.
- an end of the front frame sleeve close to the front end surface of the front frame sleeve is provided with a notch, so that the front end surface of the front frame sleeve forms an unclosed continuously extending surface.
- the arrangement of the notch can make the front end of the optical fiber connector plug in a concave-convex shape suitable for plugging, so that when the optical fiber connector plug is plugged with the optical fiber adapter, compared with the flat front end shape of the optical fiber connector plug, it can be better adapted.
- the internal space of the optical fiber adapter avoids the loosening of the connection caused by the limitation of the internal space of the optical fiber adapter, improves the stability and reliability of the plug-in connection, has strong practicability, and has a wide range of applications.
- two oppositely arranged notches are provided at one end of the front end surface of the front frame sleeve, so that the front end surface of the front frame sleeve is formed between the two notches.
- the front end surface includes a first surface and a second surface, and the first surface and the second surface are symmetrically arranged on both sides of the central axis of the front frame sleeve.
- the first surface and the second surface are both less than or equal to a quarter of the annular shape, so that the positions of the two gaps are It can accommodate the part of the side wall where the front end face of the front frame sleeve on another optical fiber connector plug is located. It can be understood that when the same optical fiber connector plug is inserted into the same optical fiber The front end faces of the two ferrules need to be butted, and the two front frame sleeves need to have an interference fit. These two gaps are to solve the problem of this butt interference fit. The position of the two gaps , which can accommodate the part of the area where the front end face of the other front frame sleeve is located.
- the two notches can be symmetrically arranged on both sides of the central axis of the front frame sleeve, and the symmetrically arranged shape enables the appearance sleeve to be subjected to a relatively uniform and balanced force when it is inserted, and the overall strength of the outer frame sleeve is high. The possibility of connection failure due to unbalanced forces is minimized.
- a notch is provided at the front end of the front frame sleeve, which also has the advantage of being easy to observe.
- the staff is directly looking at the outer surface of the outer frame sleeve with the notch, and at least the front end surface of the ferrule can be seen. Based on this, when connecting the optical fiber connection plug and the optical fiber adapter, the staff can see the position of the ferrule, which is convenient for plugging, which improves the success rate of plugging, prevents the ferrule from being collided multiple times due to mis-insertion, and avoids the ferrule being damaged. damage.
- the surface of the ferrule is provided with a first limiting structure
- the inner surface of the front frame sleeve is provided with a second limiting structure
- the first limiting structure and the second limiting structure cooperate to prevent the relative rotation between the ferrule and the front frame sleeve.
- the first limiting structure includes a first plane
- the second limiting structure protrudes from the inner surface of the front frame sleeve
- the second limiting structure includes a A second plane of the ferrule, the first plane and the second plane are in contact.
- limit structures between the front frame sleeve and the ferrule provided in this application, namely the first limit structure and the second limit structure. It can be understood that the outer surface of the ferrule is in direct contact with the inner surface of the front frame sleeve. This structure makes the structure between the ferrule and the front frame sleeve more compact, which is beneficial to the miniaturized design.
- the main housing includes a main shaft and a mounting piece both in the shape of a sleeve, the mounting piece is connected to an end of the main shaft facing the front frame sleeve, and the outer part of the ferrule is A first stop structure is provided on the surface, and the mount includes a mount body and a second stop structure, the second stop structure is located at the front end of the mount body and protrudes from the inner surface of the mount body, partially The ferrule is accommodated inside the mounting piece, and the first blocking structure cooperates with the second blocking structure to prevent the ferrule from moving out of the mounting piece from the front end of the mounting piece main body,
- the front frame sleeve is sleeved on the outer surface of the mounting piece and is fixedly connected with the mounting piece.
- the assembly between the ferrule and the main shaft is realized through the mounting piece, the specific position of the ferrule on the main shaft is determined, and the front frame sleeve is directly sleeved on the periphery of the mounting piece, that is, the inside of the mounting piece is used to install the ferrule.
- the outer part of the component is used to install the front frame sleeve, and the rear end of the installation component is used to connect the main shaft.
- the first limit structure of the ferrule and the first stop structure are adjacent to each other in the axial direction, and the first stop structure includes a first limit surface facing the front end of the ferrule, and the first limit surface It is vertically connected with the first plane of the first limiting structure.
- the main body of the mounting element is in the shape of a sleeve and includes a central axis
- the second stop structure protrudes from the inner surface of the main body of the mounting element
- the second stop structure includes a second limit surface and a contact surface.
- the second limiting surface faces the rear end of the main body of the mounting piece
- the contact surface faces the central axis of the main body of the mounting piece.
- the second limiting surface is used for cooperating with the first limiting surface of the first stop structure on the ferrule
- the contact surface is used for cooperating with the first plane of the first limiting structure of the ferrule.
- the number of the second stop structures is two, and they are oppositely arranged on both sides of the central axis of the main body of the mounting element, wherein the dimension of one of the second stop structures in the axial direction is smaller than that of the other one.
- the dimension of the two stop structures in the axial direction one of the second stop structures forms a mounting piece notch on the side away from the main body of the mounting piece, and the position of the mounting piece notch is directly opposite to the part of the contact surface of the other second stopping structure Yes, this mounting part gap is used to accommodate the second limiting structure of the front frame sleeve.
- the mounting member further includes an elastic hook
- the elastic hook is formed at the front end of the main body of the mounting member
- the front frame is sleeved with a card slot or a card hole
- the elastic hook is connected to the front frame.
- the card slot or the card hole is matched to realize the fixed connection between the mounting piece and the front frame sleeve.
- the fixing method of the elastic hook and the card hole can realize the detachable connection between the mounting part and the front frame sleeve, which is easy to assemble and disassemble, and the elastic hook is inserted into the card hole, and the elastic hook occupies the front frame sleeve.
- the internal space will not increase the radial dimension of the fiber optic connector plug.
- the positioning of the first guide structure of the front frame sleeve can be easily realized, especially the first guide structure needs to be connected with the second guide on the main shaft.
- the structure is connected, it is necessary to ensure the circumferential positioning between the front frame sleeve and the main shaft.
- the rear end of the front frame sleeve is a fully enclosed cylindrical structure, that is, the rear end of the front frame sleeve is a circumferentially closed structure, which can improve the structural strength of the front frame sleeve on the one hand, and also improve the The connection strength between the front frame sleeve and the main shaft can be improved, and the front frame sleeve is used as the appearance part of the optical fiber connector plug, and the circumferentially fully enclosed structure can bring the appearance integrity and enhance the user experience.
- the rear end surface of the mounting member body and the rear end surface of the front frame sleeve are coplanar and form a butt surface together, and the abutment surface is in contact with the end surface of the main shaft.
- the connection between the front frame sleeve and the main shaft only occupies the space of the end face of the main shaft, and does not extend to the outer surface of the main shaft.
- the abutting surface can be flat, and correspondingly the end face of the main shaft is also flat. In other embodiments, the abutting surface can also be an arc-shaped surface.
- the end surface of the main shaft is an arc-shaped surface that matches with the abutting surface. curved surface.
- the outer surface of the front frame sleeve of the present application may be coplanar with the outer surface of the main shaft, or be connected in a smooth transition, for example: the outer surface of the front frame sleeve is a cylindrical surface, and the outer surface of the main shaft is also a cylindrical surface.
- the front frame sleeve is butted to the end face of the main shaft, the two cylindrical outer surfaces with the same radial dimension are butted together to form a complete cylindrical outer surface.
- a positioning structure is provided at the butting position between the abutting surface and the front end surface of the main shaft, and the positioning structure is used for: positioning the main casing and the front frame sleeve in the circumferential direction, and/or, the main housing and the mount are circumferentially positioned.
- the rear end surface of the front frame sleeve is provided with a first incision
- the rear end surface of the mounting piece main body is provided with a second incision
- the first incision and the second incision are located in the Opposite in the radial direction
- a protrusion is provided on the end surface of the main shaft, and the protrusion is matched with the first cutout and the second cutout.
- the positioning structure between the main shaft, the front frame sleeve and the mounting surface is located at the butt joint, and the positioning is achieved through the cooperation of the first incision, the second incision and the protrusion, and the size of the optical fiber connector will not increase in the radial direction, which is beneficial to Miniaturized design.
- the number of the first slits may be one, two or more.
- the number of the first cuts is two, they can be symmetrically distributed on both sides of the central axis of the front frame sleeve.
- the number of the first slits is plural, they may be distributed at intervals in the circumferential direction.
- the number of the second slits may be one, two or more, and the same arrangement scheme of the first slits may also be provided.
- the mounting piece is connected to the main shaft through a fixing piece, and part of the fixing piece is located inside the main shaft, and the other part is located inside the mounting piece, that is, the fixing piece is in a state of being completely enclosed, and on the periphery of the fixing piece, the main shaft is Connect with the mount.
- the mounting member is connected to the main shaft through a fixing member, and the fixing member may also be partially exposed to become the appearance surface of the optical fiber connector plug.
- the fixing piece is a sleeve-like structure, and the fixing piece includes a front end, a rear end and a middle part connected between the front end and the rear end.
- the inner side of the main shaft is fixedly connected to the main shaft, and the middle part is located between the front end of the main shaft and the rear end of the mounting piece. The appearance of the plug.
- the front end of the fixing piece and the mounting piece are detachably connected by means of a snap fit with a snap hole
- a snap fit is provided on the periphery of the front end
- the mounting piece is provided with snap holes penetrating the inner and outer surfaces.
- the front snap is accommodated in the snap hole of the mounting piece.
- the rear end and the main shaft are also detachably connected by means of the buckle and the card hole.
- the periphery of the rear end is provided with a buckle, and the main shaft is provided with a card hole that penetrates through the inner and outer surfaces.
- the front end of the fixing piece and the mounting piece may also be fixed by means of screw connection, and similarly the rear end of the fixing piece and the main shaft may also be fixed by means of screw connection.
- a sealing groove is provided on the periphery of the middle portion of the fixing member for accommodating the sealing member.
- the middle part is located inside the optical fiber adapter, and the front end of the main shaft also extends into the optical fiber adapter.
- a sealing structure is provided between the rear end of the fixing member and the main shaft.
- a guide structure can also be provided on the periphery of the middle part of the fixing member, and the guide structure communicates with or extends continuously with the first guide structure on the front frame sleeve, and cooperates with the guide key in the optical fiber adapter.
- the outer periphery of the middle part and the outer periphery of the main shaft are provided with guide structures.
- the present application provides an optical fiber adapter, comprising a main body sleeve and a ferrule sleeve, the ferrule sleeve is connected inside the main body sleeve, and the main body sleeve is internally connected to the ferrule
- a first accommodating space in the inner space of the sleeve is used for accommodating the optical fiber connector plug according to any one of the embodiments of the first aspect
- the ferrule sleeve is used for accommodating the optical fiber connector
- the inner surface of the main body sleeve is used for contact with the outer surface of the front frame sleeve of the optical fiber connector plug
- the main body sleeve includes a second locking structure, the second The locking structure is located at the position of the first opening where the first accommodating space communicates with the outside world, and is used to cooperate with the first locking structure of the optical fiber connector plug.
- the main body sleeve includes a first end, a second end and a main body part connected between the first end and the second end, and the ferrule sleeve is connected to the Inside the main body portion, the first end is provided with the second locking structure, and the inner surface of the main body portion is sealedly connected with the sealing structure of the optical fiber connector plug.
- the second locking structure includes a locking groove and an elastic arm
- the locking groove is formed on the inner surface of the main body sleeve
- the main body sleeve includes a main body portion
- the elastic arm located at one end of the main body part and extending along the axial direction of the main body sleeve
- the elastic arm includes a first segment and a second segment, the first segment is connected to the second segment and the main body part
- the outer surface of the elastic arm is the surface of the elastic arm facing away from the first accommodating space, and the vertical distance from the outer surface of the first segment to the central axis of the main sleeve is greater than that of the second The vertical distance from the outer surface of the segment to the central axis of the body sleeve.
- the elastic arm is designed as a structure similar to double steps or inclined relative to the axial direction.
- the mutual abutting region between the mating surface and the elastic arm may be the region where the entire elastic arm is located (including the first segment and the second segment).
- the process of unlocking it is only necessary to move the first area of the mating surface on the optical fiber connector plug to the position of the second area in the locked state, and the second area synchronously moves to the outside of the elastic arm, that is, the first area.
- the segment is separated from the first area
- the second segment is separated from the second area
- the first area is facing the second segment, but a gap is set between the first area and the second segment, so that the elastic arm is not pressed, that is, the realization of Unlock.
- the first segment faces a part of the engaging groove, and the second segment is located at the periphery of the engaging groove.
- the outer surface of the elastic arm is stepped; or, an angle is formed between the extension direction of the elastic arm and the axial direction of the main body sleeve, and the extension of the elastic arm
- the direction is the extending direction from the main body portion to the end of the second segment away from the main body portion.
- the outer surface of the first segment and/or the outer surface of the second segment is provided with an etched structure; or, the outer surface of the elastic arm is provided with a protrusion, the protrusion is The portion is adapted to mate with a groove on the slider of the fiber optic connector plug. Both the etched structure and the structural arrangement of the protruding portion on the elastic arm are beneficial to improve the locking force.
- the second locking structure is a snap groove formed on the inner surface of the main body sleeve, and the snap groove includes a limit groove recessed on the inner surface of the main body portion and A slot or hole at the bottom of the slot, the limiting slot is used to cooperate with the elastic arm of the locking part on the optical fiber connector plug, and the slot or hole is used to cooperate with the optical fiber connector plug
- the locking block on the locking part is matched.
- the main body sleeve includes a main body portion
- the second locking structure is located at one end of the main body portion and includes a snap portion and a connecting segment
- the connecting segment is connected to the snap portion.
- the snap part is protrudingly arranged on the surface of the connecting section away from the central axis of the main body sleeve, and the connecting section is used to extend into all the holes on the optical fiber connector plug.
- the snap portion is used for matching with a slot or a hole on the locking arm on the optical fiber connector plug.
- a first slot is formed between the main body sleeve and the ferrule sleeve, and the first slot is used to accommodate part of the front frame sleeve.
- the optical fiber adapter provided by the present application is matched by the first slot between the main body sleeve and the ferrule sleeve with the front frame sleeve of the optical fiber connector plug, and the inner surface of the main body sleeve and the outer surface of the front frame sleeve are contacted and matched, The matching of the optical fiber adapter and the optical fiber connector plug is realized.
- the optical fiber adapter its structure is simplified.
- the first slot and the inner surface of the main body sleeve have realized the alignment of the optical fiber connector plug inserted therein.
- the size can be designed to match the front frame sleeve of the fiber optic connector plug, which has the advantage of small size.
- the inner wall of the main body sleeve is provided with a guide key
- the extension direction of the guide key is the same as the extension direction of the central axis of the ferrule sleeve
- the guide key is used to communicate with all
- the first guide structure on the front frame sleeve of the optical fiber connector plug is matched.
- the axial extension of the guide key makes the main body sleeve match with the straight-inserted and straight-pulled optical fiber connector plug, which is beneficial to save the operation space, and can realize that more optical fiber connection ports can be arranged in a limited space.
- the present application provides a connector assembly, including the optical fiber connector plug according to any embodiment of the first aspect and the optical fiber adapter according to any embodiment of the second aspect.
- the present application provides a communication device, comprising a casing and an optical fiber adapter connected to the casing as provided in any possible implementation manner of the second aspect, the casing is provided with a socket, and the optical fiber adapter is provided in the Inside the housing, the socket faces the first accommodating space of the optical fiber adapter.
- the number of the sockets is multiple and arranged in a row, and the number of the optical fiber adapters is also multiple, which are correspondingly arranged at the positions of the sockets.
- the number of the sockets is multiple, and they are arranged on the housing in at least two rows, and the number of the optical fiber adapters is also multiple, which are correspondingly arranged at the positions of the sockets. .
- the communication device further includes the optical fiber connector plug provided in any possible implementation manner of the first aspect, and the optical fiber connector plug is used for mating with the optical fiber adapter.
- the communication equipment provided by the present application includes a plurality of sockets arranged in rows or in multiple rows, and the optical fiber adapters are correspondingly arranged at the positions of the sockets, so that more optical fiber connection ports can be arranged in a limited space, and the communication equipment can be improved. Density of fiber optic adapters arranged in.
- Fig. 1 is a kind of concrete application scene of the optical fiber connector plug provided by the present application, is specifically the schematic diagram of FTTH network;
- FIG. 2 is a schematic diagram of a specific implementation manner of a communication device where the optical fiber connector plug provided by the present application is located;
- FIG. 3 is a schematic three-dimensional assembly diagram of the optical fiber connector plug provided by the first embodiment of the present application.
- FIG. 4 is a perspective exploded schematic diagram of an optical fiber connector plug provided by the first embodiment of the present application.
- FIG. 5 is a cross-sectional view of the optical fiber connector plug provided in the first embodiment of the present application in one direction;
- FIG. 6 is a cross-sectional view of another direction of the optical fiber connector plug provided by the first embodiment of the present application.
- FIG. 7 is a schematic perspective view of a ferrule of an optical fiber connector plug provided by the first embodiment of the present application.
- FIG. 8 is a cross-sectional view of a ferrule of an optical fiber connector plug provided by the first embodiment of the present application.
- FIG. 9 is a schematic perspective view of the front frame sleeve of the optical fiber connector plug provided by the first embodiment of the present application.
- FIG. 10 is a cross-sectional view in one direction of the front frame sleeve of the optical fiber connector plug provided by the first embodiment of the present application;
- FIG. 11 is a cross-sectional schematic diagram of the first positional relationship between the front frame sleeve and the ferrule of the optical fiber connector plug provided by the first embodiment of the present application;
- FIG. 12 is a schematic cross-sectional view of the second positional relationship between the front frame sleeve and the ferrule of the optical fiber connector plug provided by the first embodiment of the present application;
- FIG. 13 is a cross-sectional view of the front frame sleeve of the optical fiber connector plug provided in the first embodiment of the present application in another direction;
- FIG. 14 is a perspective view of the front frame sleeve of the optical fiber connector plug provided by the first embodiment of the present application;
- FIG. 15 is a perspective view of the front frame sleeve of the optical fiber connector plug provided by the first embodiment of the present application.
- FIG. 16 is a perspective view of the front frame sleeve of the optical fiber connector plug provided by the first embodiment of the present application;
- FIG. 17 is a perspective schematic view of one direction of the mounting member of the optical fiber connector plug provided by the first embodiment of the present application.
- FIG. 18 is a perspective view of another direction of the mounting member of the optical fiber connector plug provided by the first embodiment of the present application.
- 19 is a cross-sectional view of a mounting member of an optical fiber connector plug provided by the first embodiment of the present application.
- FIG. 20 is an enlarged schematic partial cross-sectional view of the optical fiber connector plug provided by the first embodiment of the present application, mainly expressing the internal structural features of the front frame sleeve;
- 21 is an enlarged schematic partial cross-sectional view of the optical fiber connector plug provided by the first embodiment of the present application, mainly expressing the internal structural features of the front frame sleeve;
- 22A is a schematic perspective view of a fixing member of an optical fiber connector plug provided by the first embodiment of the present application.
- 22B is an enlarged schematic partial cross-sectional view of the optical fiber connector plug provided by the first embodiment of the present application, mainly expressing the positional relationship between the mounting member, the fixing member, and the main shaft;
- FIG. 23 is a schematic perspective view of the spindle of the optical fiber connector plug provided by the first embodiment of the present application.
- FIG. 24 is a plan view in one direction of the main shaft of the optical fiber connector plug provided by the first embodiment of the present application.
- 25 is a cross-sectional view of the main shaft of the optical fiber connector plug provided by the first embodiment of the present application.
- FIG. 26 is a perspective view of one direction of the slider of the optical fiber connector plug provided by the first embodiment of the present application.
- 27 is a perspective view of another direction of the slider of the optical fiber connector plug provided by the first embodiment of the present application.
- 29 is a cross-sectional view of another specific implementation manner of the slider of the optical fiber connector plug provided in the first embodiment of the present application;
- FIG. 30 is a schematic perspective view of a fixing seat of an optical fiber connector plug provided by the first embodiment of the present application.
- 31 is a schematic perspective view of the dust cap of the optical fiber connector plug provided by the first embodiment of the present application.
- FIG. 32 is a schematic perspective view of an optical fiber adapter provided by the first embodiment of the present application.
- 35 is a schematic perspective view of the ceramic sleeve of the optical fiber adapter provided by the first embodiment of the present application.
- Fig. 36 is the cross-sectional schematic diagram of the optical fiber connector plug provided by the first embodiment of the present application and the corresponding optical fiber adapter after plugging;
- Figure 37 is an enlarged schematic view of part I in Figure 36;
- Figure 38 is an enlarged schematic view of part II in Figure 36;
- 39 is another schematic cross-sectional view of the optical fiber connector plug provided by the first embodiment of the present application and the corresponding optical fiber adapter plugged;
- Figure 40 is an enlarged schematic view of part III in Figure 39;
- 41 is a schematic perspective view of an optical fiber connector plug provided by the second embodiment of the present application.
- Fig. 42 is a perspective exploded schematic diagram of an optical fiber connector plug provided by the second embodiment of the present application.
- FIG. 43 is a perspective view of the main shaft of the optical fiber connector plug provided by the second embodiment of the present application.
- FIG. 45 is a schematic perspective view of the slider of the optical fiber connector plug provided by the second embodiment of the present application.
- Fig. 46 is a perspective view of another direction of the slider of the optical fiber connector plug provided by the second embodiment of the present application.
- Fig. 47 is a cross-sectional view in one direction of the slider of the optical fiber connector plug provided by the second embodiment of the present application;
- FIG. 48 is a cross-sectional view of another direction of the slider of the optical fiber connector plug provided by the second embodiment of the present application.
- 49 is a schematic perspective view of an optical fiber adapter provided by the second embodiment of the present application.
- 50 is a cross-sectional view of an optical fiber adapter provided by the second embodiment of the present application.
- Fig. 51 is a schematic diagram of a plugged state of an optical fiber connector plug and an optical fiber adapter provided by the second embodiment of the present application, wherein the optical fiber connector plug is in a locked state;
- Figure 52 is an enlarged schematic view of the IV part in Figure 51;
- 53 is a schematic diagram of the optical fiber connector plug and the optical fiber adapter provided in the second embodiment of the present application in an unlocked state;
- FIG. 54 is a schematic perspective view of an optical fiber connector plug provided by a third embodiment of the present application.
- Fig. 55 is a perspective exploded schematic diagram of the optical fiber connector plug provided by the third embodiment of the present application.
- FIG. 57 is a perspective view of one direction of the locking portion of the optical fiber connector plug provided by the third embodiment of the present application.
- Fig. 58 is a perspective view of another direction of the locking portion of the optical fiber connector plug provided by the third embodiment of the present application.
- 59 is a schematic cross-sectional view of the locking portion of the optical fiber connector plug provided by the third embodiment of the present application.
- FIG. 60 is a schematic perspective view of the slider of the optical fiber connector plug provided by the third embodiment of the present application.
- 61 is a schematic perspective view of an optical fiber adapter provided by a third embodiment of the present application.
- FIG. 62 is a schematic cross-sectional view of an optical fiber adapter provided by a third embodiment of the present application.
- Fig. 63 is a schematic diagram of a plugging state of an optical fiber connector plug and an optical fiber adapter provided by the third embodiment of the present application, wherein the optical fiber connector plug is in a locked state;
- Figure 64 is an enlarged schematic view of the V portion in Figure 63;
- FIG. 65 is a schematic diagram of the optical fiber connector plug and the optical fiber adapter provided in the third embodiment of the present application in an unlocked state.
- Axial direction It can be understood as the axial direction of the optical fiber connector plug, which is equivalent to the extension direction of the optical fiber and the ferrule, that is, the direction in which the tail of the optical fiber extends to the front end of the optical fiber and then continues to the front end of the ferrule, which is equivalent to the optical fiber connector.
- the axial direction of the shell assembly in the plug is sleeved on the periphery of the optical fiber.
- Radial direction The direction perpendicular to the axial direction.
- Sleeve-shaped sleeved on the outer surface of a long object to protect, strengthen, fix or connect.
- the sleeve-shaped element includes a cylindrical (or tubular) shell with a hollow space inside the shell, and a cylindrical (or tubular) shell.
- the two end faces of the casing are provided with openings, through which the elongated object can pass through the sleeve-shaped element, for example, the optical fiber extends into the casing assembly from one end opening of the casing assembly, and can extend from the other end opening of the casing assembly. Out of the shell components.
- the end face of the sleeve-shaped element includes an inner edge and an outer edge, the inner surface of the sleeve-shaped element is connected between the inner edges of the two end faces and faces the hollow space inside, and the outer surface of the sleeve-shaped element is connected between the two end faces. Between the outer edges of the end faces, towards the outer space of the sleeve-like element.
- the axial direction of the sleeve-like element is the direction extending from its one end to the other end face, and its radial direction is the direction extending perpendicularly from the inner surface to the outer surface, which can be understood as perpendicular to its axial direction.
- the outer contour of the cross section of the sleeve-like element may be a circle, a polygon, a triangle or other regular or irregular shapes, which are not limited in this application.
- the optical fiber connector plugs, optical fiber adapters, connector assemblies and communication equipment provided in this application are used in the FFTx system.
- the FFTx system can be, but not limited to, FFTH (fiber to the home, fiber to the home), FFTC (fiber to the curb, Fiber to the curb), FTTP (fiber to the premises, fiber to the premises), FTTN (fiber to the node or neighborhood, fiber to the node), FTTO (fiber to the office, fiber to the office), FTTSA (fiber to the servicearea) , Fibre to Service Area).
- FFTH fiber to the home, fiber to the home
- FFTC fiber to the curb, Fiber to the curb
- FTTP fiber to the premises, fiber to the premises
- FTTN fiber to the node or neighborhood, fiber to the node
- FTTO fiber to the office, fiber to the office
- FTTSA fiber to the servicearea
- Fibre to Service Area Fibre to Service Area
- Figure 1 shows a schematic diagram of an FTTH network.
- a pre-connected fiber distribution point (Connectorised Fiber Distribution Point) between the central computer room (Central Office, CO) 1 and the customer terminal box (Customer Splicing Point, CSP) 4.
- CFDP fiber distribution box 3
- the communication equipment in the central computer room 1 is connected to the pre-connected wiring point 2 through the optical cable
- the signal is distributed to the pre-connected wiring point 2
- the pre-connected wiring point 2 transmits the signal through the optical cable To the fiber distribution box 3, and then output (transmitted through the optical cable) to the user terminal box 4 through the fiber distribution box 3.
- the communication equipment provided by the present application may be, but not limited to, a fiber access terminal (FAT), an optical cable splice box (splitting and splicing closure, SSC).
- FAT fiber access terminal
- SSC optical cable splice box
- FIG. 2 is a schematic diagram of a communication device 1000 according to an embodiment.
- the communication device 1000 includes a housing 400, an adapter assembly 200A, an indoor connector assembly 300A, and an outdoor connector assembly 100A.
- the adapter assembly 200A is fixed to the casing 400, the indoor connector assembly 300A is accommodated inside the casing 400, the outdoor connector assembly 100A is located outside the casing 400, and the outdoor connector assembly 100A and the indoor connector assembly 300A can be connected through the adapter assembly 200A. Realize the plug-in, and then realize the transmission of the optical signal.
- the indoor connector assembly 300A can be understood as being located inside the housing 400 in a relatively closed space, which can effectively remove external dust, Water vapor, etc. isolated.
- the outdoor connector assembly 100A can be understood as being located outside the housing 400 in a relatively open space, and needs to have better environmental adaptability to cope with the complex and changeable external environment.
- the housing 400 includes a box body 401 and a top cover 402 covering the box body 401.
- the box body 401 is provided with a plurality of sockets 4011 arranged side by side, and the sockets 4011 can be arranged in one row or multiple rows.
- the adapter assembly 200A includes a plurality of fiber optic adapters 200 , and the number of the fiber optic adapters 200 is equal to or smaller than the number of the sockets 4011 (the case of less than that means that some of the sockets can be reserved for other purposes).
- the socket 4011 may also be provided on the top cover 402 .
- Each fiber optic adapter 200 can be correspondingly disposed at the position of the corresponding socket 4011 .
- the indoor connector assembly 300A includes a plurality of indoor optical fiber connector plugs 300 , and the plurality of indoor optical fiber connector plugs 300 are accommodated in the housing 400 .
- the number of indoor optical fiber connector plugs 300 is the same as the number of optical fiber adapters 200 , or may be less than the number of optical fiber adapters 200 , so that each indoor optical fiber connector plug 300 can be plugged with a corresponding optical fiber adapter 200 .
- the outdoor connector assembly 100A includes a plurality of outdoor optical fiber connector plugs 100.
- the number of outdoor optical fiber connector plugs 100 may be the same as the number of optical fiber adapters 200, or may be less than the number of optical fiber adapters 200.
- Each outdoor optical fiber connector plug 100 may be A corresponding one of the optical fiber adapters 200 is plugged in from the outside of the housing 400 .
- the two ends of the optical fiber adapter 200 are respectively provided with an opening adapted to the indoor optical fiber connector plug 300 and an opening adapted to the outdoor optical fiber connector plug 100, the indoor optical fiber connector plug 300 and the outdoor optical fiber connector plug. 100 are respectively inserted into the two openings of the optical fiber adapter 200, so that the ferrules of the indoor optical fiber connector plug 300 and the outdoor optical fiber connector plug 100 are butted in the optical fiber adapter 200, that is, the docking of the two optical fibers that need to be connected is realized to The optical signal output by the transmitting fiber can be coupled to the receiving fiber to the maximum extent.
- each indoor optical fiber connector plug 300 and each outdoor optical fiber connector plug 100 can be respectively inserted into the corresponding optical fiber adapter 200 from the inside and the outside of the housing 400, so that each indoor optical fiber connector plug 300 can be connected with the corresponding optical fiber adapter 200, respectively.
- the corresponding outdoor optical fiber connector plug 100 realizes butt plugging. That is, one indoor optical fiber connector plug 300, one optical fiber adapter 200 and one outdoor optical fiber connector plug 100 can together form a connector assembly, so as to realize the link transmission of an optical signal.
- the communication device 1000 provided by the present application includes a plurality of sockets 4011 arranged in rows or in multiple rows.
- the optical fiber adapters 200 are correspondingly arranged at the positions of the sockets 4011, so that more optical fiber connection ports can be arranged in a limited space. , to increase the density of fiber optic adapters arranged in communication equipment.
- the optical fiber connector plug provided by this application may be the outdoor optical fiber connector plug 100 in the communication device 1000 of the embodiment shown in FIG. 2 , or the indoor optical fiber connector plug 300 in the communication device 1000 of the embodiment shown in FIG. 2 . .
- the optical fiber connector plugs are outdoor optical fiber connector plugs.
- optical fiber connector plug The detailed description of the optical fiber connector plug provided by the first embodiment is as follows.
- FIG. 3 is a schematic three-dimensional assembly diagram of an optical fiber connector plug provided by a possible embodiment
- FIG. 4 is a three-dimensional exploded schematic diagram of the optical fiber connector plug shown in FIG. 3,
- a dust cap is added to FIG. 4
- FIGS. 5 and 6 are sectional views of the optical fiber connector plug in different directions.
- the optical fiber connector plug 100 provided by the present application includes a transmission member 10, a shell assembly 20, a sealing structure 30, a sliding member 40, a dust cap 50, a first elastic member 60 and a second elastic member 70.
- the shell assembly 20 is sleeved on the transmission member
- the outer periphery of the component 10 is used for protecting the transmission component 10 and for plugging and unplugging the optical fiber connector plug 100 , wherein the dust cap 50 may be a part of the shell assembly 20 , and the optical fiber connector plug 100 may not include the dust cap 50 .
- the slider 40 is slidably connected to the outer surface of the housing assembly 20 for locking and unlocking the fiber optic connector plug 100 and the fiber optic adapter 200 .
- the sealing structure 30 is disposed on the outer surface of the housing assembly 20 and is located at the front end of the sliding member 40 in the axial direction. The sealing structure 30 is used for sealingly connecting with the inner surface of the optical fiber adapter 200 .
- the front end refers to the end that is plugged with the optical fiber adapter (which can be understood as the end where the ferrule is located), and the tail end or rear end refers to the end away from the ferrule.
- the transmission member 10 includes an optical fiber 11 and a ferrule 12 , and the ferrule 12 is connected to the front end of the optical fiber 11 .
- the shell assembly 20 includes a front frame sleeve 21 and a main casing 22.
- the front frame sleeve 21 is a sleeve-like structure and surrounds the ferrule 12, that is, it is sleeved on the periphery of the ferrule 12.
- the inner space of the front frame sleeve 21 can also accommodate
- the front frame sleeve 21 is used for protecting the ferrule 12 and for splicing and mating with the optical fiber adapter 200 .
- the main housing 22 includes a mounting piece 221 , a fixing piece 222 , a main shaft 223 , a fixing seat 224 , a tail sleeve 225 and a heat shrinkable sleeve 226 .
- the main casing 22 is in the shape of a sleeve as a whole, and is used for accommodating the optical fiber 11.
- Each component in the main casing 22 is also in the shape of a sleeve.
- the main casing 22 is formed by assembling and connecting six components. All of them are fixedly connected, so some of the components can be an integral structure.
- the fixing member 222 can be integrally formed on the front end surface of the main shaft 223 , so the fixing member 222 can be regarded as a part of the main shaft 223 .
- the optical fiber 11 includes a core 111 , a reinforcing layer 112 wrapped around the periphery of the core 111 , and an outer layer 113 wrapped around the periphery of the reinforcing layer 112 .
- Part of the fiber core 111 protrudes out of the reinforcing layer 112 and is fixedly connected to the ferrule 12 .
- the optical fiber part of the reinforcing layer 112 is not wrapped by the outer layer, and part of the outer layer is also located inside the shell assembly 20 .
- the material of the reinforcing layer 112 can be metal or non-metal, the reinforcing layer 112 made of metal can be steel wire, and the reinforcing layer 112 of non-metallic material can be FRP (fiber reinforced composite material), and the reinforcing layer 112 is mainly used to strengthen the tensile strength of the optical fiber. and balance.
- the outer surface of the reinforcement layer 112 is not as smooth as the outer surface of the outer layer, and the outer surface of the reinforcement layer 112 may have a concave-convex structure, similar to a tooth-like structure.
- a fixed connection is made with the housing assembly 20 .
- the core 111 of the optical fiber 11 is fixed to the ferrule 12 by curing glue. The detailed structure of the ferrule 12 is described below.
- the ferrule 12 includes a front end surface 121 and a rear end surface 122 , a front segment 123 , a middle segment 124 and a rear segment 125 connected in sequence between the front end surface 121 and the rear end surface 122 .
- the center-symmetric structure for example, the rear section 125 is cylindrical, and the front section 123 is a combination of cylindrical and truncated cones.
- the middle section 124 includes a first stop structure 1241 and a first stop structure 1242 . In the axial direction, the first stop structure 1241 is located between the first stop structure 1242 and the front section 123 .
- the first limiting structure 1241 is used to cooperate with the shell assembly 20 to limit the ferrule 12 in the circumferential direction, that is, to prevent the ferrule 12 from rotating relative to the shell assembly 20 .
- the first limiting structure 1241 includes a first plane 1243.
- the number of the first planes 1243 can be one, two or more.
- the arrangement of the first planes 1243 can have a circumference as long as the middle section 124 can be a non-rotationally symmetrical structure.
- the role of the upper limit of the direction As shown in FIG. 7 , the number of the first planes 1243 is four, which are spaced and symmetrically distributed on the outer surface of the middle section 124 .
- the first blocking structure 1242 is a columnar structure connected to the first limiting structure 1241 .
- the first blocking structure 1242 includes a first limiting surface 1244 , and the first limiting surface 1244 faces the front end surface 121 of the ferrule 12 .
- This embodiment the number of the first limiting surfaces 1244 is also set corresponding to the number of the first planes 1243 , and the first limiting surfaces 1244 are vertically connected to the first planes 1243 .
- a piece is cut off from the outer surface of the cylindrical solid body by means of cutting, and a first plane 1243 and a first limiting surface 1244 are formed at the same time.
- the outer surface of the rear section 125 is used for sheathing the first elastic member 60 (such as a spring), and the surface of the first blocking structure 1242 facing the rear section 125 is a positioning surface 1245 , and the positioning surface 1245 is used for abutting the first elastic member 60 . .
- the rear section 125 is provided with a core fixing hole 1251 .
- the core fixing hole 1251 forms an opening on the rear end surface 122 for inserting the fiber core 111 , and is formed between the bottom of the core fixing hole 1251 and the front end surface 121 of the ferrule 12
- the bottom of the light-passing hole 126 refers to the position facing the opening in the core fixing hole 1251 .
- the front end face 121 of the ferrule 12 is docked to realize optical signal transmission between the two optical fiber connector plugs 100 . Therefore, for the optical fiber connector plug 100, the front end surface 121 of the ferrule 12 needs to be protected by the shell assembly 20 to ensure that the front end surface 121 of the ferrule 12 is not scratched and the quality of optical transmission is ensured.
- the front frame cover 21 on the shell assembly 20 can protect the front end surface of the ferrule 12 .
- the detailed description of the front frame cover 21 is as follows (refer to FIGS. 9 to 16 for description).
- the front frame sleeve 21 is in the shape of a sleeve, and includes a front end surface 211 and a rear end surface 212 . 4 to 6 , in the optical fiber connector plug 100 , the front frame sleeve 21 is located at the front end of the housing assembly 20 , and the rear end surface 212 of the front frame sleeve 21 is used for connecting to the main housing 22 .
- the front end surface 211 of the front frame sleeve 21 is flush with the front end surface 121 of the ferrule 12 .
- the front end surface 121 of the ferrule 12 is surrounded by the inner surface of the front frame sleeve 21 , that is, the front end surface 121 of the ferrule 12 is retracted into the front frame sleeve 21 , and the front end of the front frame sleeve 21 The surface 211 protrudes from the front end surface 121 of the ferrule 12 in the axial direction.
- the distance between the front end surface 121 of the ferrule 12 and the front end surface 211 of the front frame sleeve 21 is L. It can also be understood as: the vertical projection of the front end surface 121 of the ferrule 12 on the front frame sleeve 21 is located on the front end surface 211 of the front frame sleeve 21 or the inner surface of the front frame sleeve 21, whereby, The protection of the front end surface of the ferrule 12 is realized. In the embodiments shown in FIGS. 11 and 12 , both the front end surface 11 of the front frame sleeve 21 can protect the front end surface of the ferrule 12 . Specifically, the front frame sleeve 21 can protect the front end face of the ferrule during the process of turnover, transportation, and plugging and unplugging with the optical fiber adapter. Optical signals can be transmitted between the two stably and reliably.
- a slot 217 is formed between the inner surface of the front frame sleeve 21 and the ferrule 12, and the slot 217 forms an opening between the front end face 211 of the front frame sleeve 21 and the front end face 121 of the ferrule 12,
- the slot 217 is used to cooperate with the ferrule sleeve of the optical fiber adapter, that is, when the optical fiber connector plug is inserted into the optical fiber adapter, the ferrule is inserted into the ferrule sleeve, and the ferrule sleeve is inserted into the slot 217, and the ferrule sleeve is inserted into the ferrule sleeve.
- One end of the barrel should be inserted into the slot 217, that is, the end face of the ferrule sleeve is located in the slot 217, and is arranged opposite to the bottom of the slot 217, and the bottom of the slot 217 refers to the opening of the slot 217. opposite end.
- the front end surface 211 includes a first surface 211A and a second surface 211B.
- the first surface 211A and the second surface 211B are connected to form a completed annular shape, the first surface 211A and the second surface 211B are both less than or equal to a quarter of the annular shape, so that the two The positions of the gaps G1 and G2 can accommodate the part of the side wall where the front end face of the front frame sleeve on the other optical fiber connector plug is located. It can be understood that when the same optical fiber connector plug 100 is inserted into the same optical fiber adapter 200 In the middle, since the front end surface of the front frame sleeve 21 protrudes from the front end surface 211 of the ferrule 12, the two ferrules 12 need to be butted, and the two front frame sleeves 21 need to have interference fit.
- the two gaps G1 and G2 are for To solve the problem of butt interference fit, the positions of the two gaps G1 and G2 can accommodate a part of the area where the front end surface 211 of the other front frame sleeve 21 is located.
- the two gaps G1 and G2 can be symmetrically arranged on both sides of the central axis of the front frame sleeve 21, and the symmetrically arranged shape makes the force on the appearance sleeve during insertion can be relatively uniform and balanced, and the overall strength of the outer frame sleeve High, which can minimize the possibility of connection failure due to unbalanced forces.
- a gap G is formed at one end of the front end surface of the front frame sleeve 21 , so that the front end surface 211 of the front frame sleeve 21 is not formed.
- a closed continuously extending surface, such as the front end face 211, may be C-shaped or arcuate or semi-circular.
- the setting of the notch G can make the front end of the optical fiber connector plug present a concave-convex shape suitable for plugging, so that when the optical fiber connector plug is plugged with the optical fiber adapter, compared with the flat front end shape of the optical fiber connector plug, it can be better. It adapts to the internal space of the optical fiber adapter, avoids the loosening of the connection caused by the limitation of the internal space of the optical fiber adapter, improves the stability and reliability of the plug-in connection, has strong practicability, and has a wide range of applications.
- a gap G is provided at the front end of the front frame sleeve, which also has the advantage of being easy to observe.
- the staff is looking at the outer surface of the outer frame sleeve with the gap G, and at least the front end of the ferrule can be seen. Based on this, when connecting the optical fiber connection plug and the optical fiber adapter, the staff can see the position of the ferrule, which is convenient for plugging, which improves the success rate of plugging, prevents the ferrule from being collided multiple times due to mis-insertion, and avoids the ferrule being damaged. damage.
- the front end surface 211 of the front frame sleeve 21 is a closed annular structure, that is, the front end surface 211 is not provided with a notch structure.
- the front end surface 211 can be circular or other shapes.
- the contour of the inner edge of the front end surface 211 can be circular, and the contour of the outer edge of the front end surface 211 can be square.
- the square outer contour is convenient to match the same shape. space inside the fiber optic adapter.
- the outer surface of the front frame sleeve 21 is provided with a first guide structure 213 , the first guide structure 213 extends in the axial direction, and the first guide structure 213 can extend from the front frame sleeve 21 .
- the front end surface 211 of the front frame sleeve 21 extends to the rear end surface 212 of the front frame sleeve 21, and can also extend from the front end surface 211 of the front frame sleeve 21 to the middle position of the front frame sleeve 21.
- the middle position refers to the position between the front end surface 211 and the rear end surface 212.
- the position between the front end surface 211 and the rear end surface 212 not only represents the center position of the front end surface 211 and the rear end surface 212 , but can also be a position close to the front end surface 211 or a position close to the rear end surface 212 .
- the first guide structure 213 may be a groove structure recessed on the outer surface of the front frame sleeve 21 , namely the first guide structure 213 A guide structure 213 does not penetrate to the inner surface of the front frame cover 21 .
- the first guide structure 213 penetrates through the inner surface and the outer surface of the front frame sleeve 21 (ie, a cutout or hollow structure formed on the front frame side 21 ).
- the first guide structure 213 can be arranged corresponding to the position of the notch, and the first guide structure and the notch can provide a striking reminder for the alignment of the plugging process of the optical fiber connector.
- the opening of the first guide structure 213 toward the front end surface 211 of the front frame sleeve 21 communicates with the gap G.
- a chamfer may be formed at the opening of the first guide structure 213 toward the front end surface 211 , so that the front end of the first guide structure 212 has a flared shape.
- the setting of the chamfer can provide a certain fault tolerance space for the first guide structure 213. Even if the guide key on the optical fiber adapter is not aligned with the first guide structure 213, it can slide into the first guide structure under the guiding action of the chamfer. In 213, when the staff plugs the optical fiber connector plug and the optical fiber adapter, the plugging efficiency and the plugging success rate can be improved.
- the chamfer can also be rounded, the rounded corner has no edges and the surface is smoother, which can effectively prevent the wear of the corresponding structure on the optical fiber adapter, and has strong safety.
- the first guide structure 213 may also be a structure protruding from the outer surface of the front frame sleeve 21 .
- the number of the first guide structures 213 may be one, two or more. Two or more first guide structures 213 may be evenly arranged on the outer surface of the front frame cover 21 at intervals in the circumferential direction.
- the first guide structure 213 is provided, which can make the front frame sleeve 21 have a striking reminder and guiding function during the process of docking the optical fiber connector plug and the optical fiber adapter, so as to facilitate the alignment of the optical fiber connector plug and the optical fiber adapter, and improve the docking and docking. It can prevent the ferrule assembly of the fiber optic connector plug from being damaged and fail due to multiple collisions due to the wrong insertion of the fiber optic connector plug, and effectively increase the service life of the fiber optic connector plug.
- the outer surface of the front frame sleeve 21 is cylindrical. Since the outer surface needs to be inserted and matched with the adapter and has a guiding structure, the outer surface of the front frame sleeve 21 is also the outer surface of the optical fiber connector plug 100. The outer surface of the front frame sleeve 21 is at During the plugging process with the optical fiber adapter 200 , it is directly exposed to the outside of the optical fiber connector plug 100 , and no other components block the front frame sleeve 21 . When the optical fiber connector plug 100 is idle, a dust cap 50 can be set on the outside of the front frame sleeve 21. Since there is only one front frame sleeve 21 around the ferrule 12 of the optical fiber connector plug 100, the structure is simple and the size can be miniaturized. Therefore, the size of the dust cap 50 can be designed to be a small structure.
- the inner surface of the front frame sleeve 21 is provided with a second limiting structure 214 for cooperating with the first limiting structure 1241 on the ferrule 12 to prevent The ferrule 12 rotates in the front frame sleeve 21 .
- the front frame cover 21 includes a central axis C1 connected between the center position of the front end surface 211 and the center position of the rear end surface 212
- the second limiting structure 214 is protrudingly disposed on the inner surface of the front frame cover 21
- the second The limiting structure 214 includes a second plane 2142 .
- the second plane 2142 faces the central axis C1 .
- the second plane 2142 is the surface of the second limiting structure 214 on the side away from the outer surface of the front frame cover 21 .
- the second plane 2142 is used for matching with the first plane 1243 of the first limiting structure 1241 of the ferrule 12 .
- the first plane 1243 and the second plane 2142 this application is not limited to the theoretical plane features, it can be understood that the first plane can also be a near plane, such as an arc surface close to the plane, or the first plane and the second plane Concave-convex structures can also be provided on the top.
- the inner surface of the front frame sleeve 21 is provided with a clamping hole 215 .
- the clamping hole 215 is a hole-like structure passing through the inner surface and the outer surface of the front frame sleeve 21 , and the clamping hole 215 can also be a concave structure.
- the slot structure is provided on the inner surface of the front frame sleeve 21 .
- the snap hole 215 is used to fix the mounting member 221 of the main casing 22 .
- the number of the clamping holes 215 can be one, or two, or more. In the embodiment shown in FIG. 11 , the number of the clamping holes 215 is two, which are oppositely arranged on both sides of the central axis of the front frame sleeve 21 .
- the rear end surface 212 of the front frame sleeve 21 is provided with a first cutout 216 , and the first cutout 216 is formed on the rear end surface 212 , the inner surface and the outer surface of the front frame sleeve 21 . Opening, the first cutout 216 is used to cooperate with the protrusion 2232 on the main casing 22 to position the front frame sleeve 21 and the main casing 22 in the circumferential direction, and prevent the front frame sleeve 21 from rotating relative to the main casing 22 .
- the front end surface 211 of the front frame sleeve 21 provided by the present application can protect the front end surface 121 of the ferrule 12 , the inner surface of the front frame sleeve 21 can be connected to the ferrule 12 in a limited position, and the outer surface of the front frame sleeve 21 is used for connecting with the optical fiber adapter 200
- the inner surface of the frame is matched with the first guide structure 213 , and the rear end surface of the front frame sleeve 21 is docked and positioned with the main casing 22 .
- the application applies for the protection features (the front end face 211 of the front frame sleeve 21 ) and the plug-in mating features (the slot formed between the inner surface of the front frame sleeve 21 and the ferrule 12 and the outer surface of the front frame sleeve 21 to be arranged on the periphery of the ferrule 12 )
- Contact and fit with the inner surface of the optical fiber adapter are concentrated on the front frame sleeve 21, which can not only reduce the number of parts, simplify the structure of the optical fiber connector plug 100, but also facilitate the miniaturized design of the radial size.
- the rear end of the front frame sleeve 21 is a fully enclosed cylindrical structure, that is, the rear end of the front frame sleeve 21 is a circumferentially closed frame. Even if the first cutout 216 is provided, after the front frame sleeve 21 and the main shaft 223 are assembled, the first One of the openings 216 is also filled with the corresponding protrusions on the main shaft 223. Therefore, on the assembled optical fiber connector plug, the rear end of the front frame sleeve 21 is still a fully enclosed circumferentially closed structure.
- the front frame sleeve can improve the structural strength of the front frame sleeve, and on the other hand, it can also improve the connection strength between the front frame sleeve and the main shaft, and the front frame sleeve is used as the appearance part of the optical fiber connector plug, and the fully enclosed structure in the circumferential direction can bring a complete appearance. enhance the user experience.
- the mounting member 221 and the front frame sleeve 21 are stacked in a radial direction, and the front frame sleeve 21 is sleeved on the periphery of the mounting member 221 .
- a detailed description of the mount 221 is as follows.
- the mounting member 221 includes a mounting member body 2211 , elastic hooks 2212 and a second blocking structure 2213 , the elastic hooks 2212 and the second blocking structure 2213 are formed on the mounting member main body 2211 .
- the rear end surface 2214 of the mount body 2211 is used for docking with the main shaft 223 .
- the mounting member body 2211 is in the shape of a sleeve and includes a central axis C2
- the second blocking structure 2213 protrudes from the inner surface of the mounting member body 2211
- the second blocking structure 2213 includes a second limiting surface 2215 and
- the contact surface 2216 and the second limiting surface 2215 face the rear end of the mount body 2211
- the contact surface 2216 faces the central axis C2 of the mount body 2211 .
- the second limiting surface 2215 is vertically connected to the contact surface 2216
- both the second limiting surface 2215 and the contact surface 2216 are planar.
- the second limiting surface 2215 is used to cooperate with the first limiting surface 1244 of the first stop structure 1242 on the ferrule 12
- the contact surface 2216 is used to cooperate with the first plane 1243 of the first limiting structure 1241 of the ferrule 12 .
- the number of the second stop structures 2213 is two, and they are oppositely arranged on both sides of the central axis C2 of the main body of the mounting member, wherein the dimension of one of the second stop structures 2213 in the axial direction is smaller than that of the other second stop structures 2213 in the axial direction.
- the second plane 2142 of the second limiting structure 214 of the front frame cover 21 is coplanar with the contact surface 2216 of one of the second stop structures 2213 , and is coplanar with the contact surface 2216 of the other second stop structure 2213 Relative settings.
- the outer surface of the mount body 2211 contacts the inner surface of the front frame sleeve 21 , and the inner surface of the mount body 2211 contacts the ferrule 12 .
- the elastic hooks 2212 are used to cooperate with the locking holes 215 on the front frame sleeve 21 , so as to fixedly connect the mounting member 221 and the front frame sleeve 21 .
- the number of the elastic hooks 2212 is two, which are symmetrically distributed on both sides of the central axis C2 of the mounting body 2211 , and the two second blocking structures 2213 are respectively located on both sides of the elastic hooks 2212 .
- the two second blocking structures 2213 are distributed between the two elastic hooks 2212 .
- the number of elastic hooks 2212 may be only one, or the number of elastic hooks 2212 may be three or more than three, which is not specifically limited in this application.
- the fixing method between the mounting piece 221 and the front frame sleeve 21 is not limited to the fitting and fixing through the elastic hook 2212 and the locking hole 215. In other embodiments, it can be fixed by other means.
- the mounting piece 221 can also be fixed without elasticity.
- the hook 2212, the mounting piece 221 and the front frame cover 21 can be fixed by screws, and the screws can pass through the front frame cover 21 and be fixed in the mounting piece 221; or, the mounting piece 221 and the front frame cover can be fixedly connected by glue 21; or, by setting a hook on the front frame sleeve 21, and setting a card slot or a card hole on the mounting member 221, and fixing the mounting member 221 and the front frame sleeve 21 through the cooperation of the hook and the card groove or the card hole.
- the rear end surface 2214 of the mounting member body 2211 is provided with a second cutout 2218 , and the second cutout 2218 forms openings on the rear end face 2214 , the inner surface and the outer surface of the mounting member body 2211 , and the second cutout 2218 is used to realize the positioning between the mounting piece 221 and the main shaft 223 , to position the mounting piece 221 and the main shaft 223 in the circumferential direction, and prevent the mounting piece 221 from rotating relative to the main shaft 223 .
- the rear end surface 2214 of the mounting member main body 2211 and the rear end surface 212 of the front frame sleeve 21 are coplanar and together form the butting surface S1, so The abutting surface S1 is in contact with the end surface of the main shaft 223 .
- the present application adopts the structural design that the butting surface S1 is in contact with the end face of the main shaft 223, so that the connection between the front frame sleeve 21 and the main shaft 223 only occupies the space on the end face of the main shaft 223, and does not extend to the outer surface of the main shaft 223, and the front frame sleeve of the present application
- the outer surface of 21 can be coplanar with the outer surface of the main shaft 223, or connected with a smooth transition.
- the outer surface of the front frame sleeve 21 is a cylindrical surface
- the outer surface of the main shaft 223 is also a cylindrical surface
- the front frame sleeve 21 is connected to the main shaft 223.
- the two cylindrical outer surfaces of the same radial dimension are butted to form a complete cylindrical outer surface.
- the butting surface S1 and the end face of the main shaft 223 are positioned in the circumferential direction through the structure of the incision and the protrusion.
- the front frame sleeve 21 and the mounting member 221 are positioned to the main shaft 223 .
- the butt joint of the butt surface S1 and the main shaft 223 can form a sealed connection.
- the function of this sealed connection is to seal and isolate the space inside the main shaft 223 from the external space, so as to protect the fiber core and the ferrule from erosion by dust, water vapor, etc., and improve the optical fiber.
- the inner surface of the mounting member body 2211 is further provided with a threaded portion 2219 , and the threaded portion 2219 is used for fixing the connection fixing member 222 .
- the fixing member 222 is also in the shape of a sleeve.
- the front end of the fixing member 222 is provided with external threads 2221 .
- the rear end of the fixing member 222 extends into the main shaft 223 and is fixedly connected to the inner surface of the main shaft 223 .
- the rear end of the fixing member 222 forms an elastic retaining arm 2222
- the elastic retaining arm 2222 extends in the axial direction
- a retaining portion 2223 protrudes from the outer surface of the elastic retaining arm 2222 .
- the 2223 is used to cooperate with the limiting step on the inner surface of the main shaft 223 to realize the fixing of the fixing member 222 to the main shaft 223 .
- the rear end of the fixing member 222 is provided with three elastic locking arms 2222, and gaps 2224 are formed between adjacent elastic locking arms 2222, and the gaps 2224 are formed to enable the elastic locking arms 2222 to elastically swing in the radial direction.
- the number of the elastic buckle arms 2222 may also be one, two or more, which is not limited in this application.
- part of the fixing member 222 is located inside the main shaft 223 , and the other part is located inside the mounting member 221 , that is, the fixing member 222 is completely surrounded.
- the main shaft 223 and the mounting member 221 are butted.
- the fixing member 222 may also be partially exposed as the appearance surface of the optical fiber connector plug.
- the fixing member 222 is a sleeve-like structure, the fixing member 222 includes a front end 2225 , a rear end 2226 and a middle portion 2227 connected between the front end 2225 and the rear end 2226 , and the front end 2225 of the fixing member 222 extends
- the inner side of the mounting member 221 is fixedly connected to the mounting member 221
- the rear end 2226 of the fixing member 222 extends into the inner side of the main shaft 223 and is fixedly connected to the main shaft 223, and the middle portion 2227 is located between the front end of the main shaft 223 and the rear end of the mounting member 221, also It can be understood that the middle portion 2227 is located between the front end of the main shaft 223 and the rear end of the front frame sleeve 21, and the outer surface of the middle portion 2227 forms the appearance surface of the optical fiber connector plug.
- the front end 2225 and the mounting piece 221 are detachably connected by means of a snap fit with a snap hole.
- the front end 2225 is provided with snap snaps, and the mounting piece 221 is provided with snap holes penetrating the inner and outer surfaces.
- the front end 2225 The clip is accommodated in the clip hole of the mounting member 221 .
- the rear end 2226 and the main shaft 223 are also detachably connected by means of a buckle and a card hole.
- the rear end 2226 is provided with a buckle, and the main shaft 223 is provided with a card hole penetrating the inner and outer surfaces.
- the buckle is accommodated in the clamping hole of the main shaft 223 .
- the periphery of the middle portion 2227 is provided with a sealing groove for accommodating the sealing member 30.
- the periphery of the central portion 2227 may not be provided with a sealing groove, but a sealing groove is provided on the main shaft 223.
- a sealing structure may also be provided between the rear end 2226 of the fixing member 222 and the main shaft 223 .
- a guide structure can also be provided on the periphery of the middle portion 2227, the guide structure communicates with or extends continuously with the first guide structure 213 on the front frame sleeve 21, and cooperates with the guide keys in the optical fiber adapter.
- guide structures are provided on the periphery of the middle part 2227 and the periphery of the main shaft 223 , and the two guide structures are both provided on the extension path of the first guide structure 213 on the front frame sleeve 21 , and are connected with the front frame sleeve 21 .
- the first guide structures 213 together form a guide structure for the fiber optic connector plug.
- the core element of the main housing 22 is the main shaft 223 .
- the front end surface 2231 of the main shaft 223 is used for docking with the front frame sleeve 21 and the mounting piece 221 .
- the front end surface 2231 of the main shaft 223 is protruded with a protrusion 2232 , and the protrusion block 2232 extends from the inner edge of the front end surface 2231 of the main shaft 223 to the radial direction.
- the outer edge of the front end surface 2231 of the main shaft 223 is the protrusion 2232 .
- the outer surface of the main shaft 223 is sequentially provided with a second guide structure 2233, a sealing groove 2234, a locking portion 2235, a first sliding guide structure 2236 and Fixed part 2237.
- the second guide structure 2233 is abutted with the first guide structure 213 on the front frame sleeve 21 (as shown in FIG. 3), and cooperates with the guide keys on the optical fiber adapter 200, so that Relative rotation between the front frame cover 21 and the main shaft 223 can be prevented.
- the second guide structure 2233 may be a groove structure recessed on the outer surface of the main shaft 223, or the second guide structure 2233 penetrates through the inner surface of the main shaft 223 and The outer surface (that is, it can be understood as a notch structure provided on the main shaft 223 ), and in other embodiments, the second guide structure 2233 can also be a structure protruding from the outer surface of the main shaft 223 .
- the circumferential and radial dimensions of the second guide structure 2233 can be the same as the circumferential and radial dimensions of the first guide structure 213, because the outer surface of the main shaft and the outer surface of the front frame are both the appearance surfaces of the optical fiber connector plug , the circumferential size and radial size of the second guide structure 2233 are designed to be the same as the circumferential size and radial size of the first guide structure 213, so that the first guide structure 213 and the second guide structure 2233 can visually form a In this way, the front frame sleeve and the main shaft also have a complete appearance consistency effect, which is not only conducive to the miniaturized design, but also improves the user experience.
- the sealing groove 2234 is an arc-shaped groove structure that surrounds the outer surface of the main shaft 223.
- the side of the sealing groove 2234 away from the second guide structure 2233 is a locking portion 2235.
- the locking portion 2235 is described in detail below.
- the outer surface of the main shaft 223 as defined in this application refers to the surface of the load-bearing locking portion 2235 , not the outer surface of the locking portion 2235 .
- the locking portion 2235 can be integrally formed with a convex boss structure on the outer surface of the main shaft 223 ; the locking portion 2235 and the main shaft 223 can also be a separate structure, for example, the locking portion 2235 is sleeved and It is fixed on the outer surface of the main shaft 223, or connected to the outer surface of the main shaft 223 by other fixing means (eg, glue fixing).
- other fixing means eg, glue fixing
- the locking portion 2235 can be a closed ring structure surrounding the outer surface of the main shaft 223, which can be understood as a cylindrical boss structure extending continuously in the circumferential direction, which is a central rotationally symmetrical structure; the locking portion 2235 can also be a non-closed ring structure,
- one, two or more locking parts 2235 are arranged on the outer surface of the main shaft 223.
- the locking parts 2235 can be symmetrically distributed on both sides of the main shaft 223, and a plurality of locking parts
- the locking parts 2235 can be distributed on the same circumference at equal intervals.
- the outer surface of the locking portion 2235 may be a smooth surface, such as a cylindrical surface, an arc surface or a flat surface, and the outer surface of the locking portion 2235 may be provided with threads or other microstructures for improving contact friction, such as an etched structure.
- first sliding guide structure 2236 the side of the locking portion 2235 away from the sealing groove 2234 is a first sliding guide structure 2236 , and the first sliding guide structure 2236 is used to cooperate with the sliding member 40 to slide the sliding member 40 on the main shaft 223
- the connection provides installation limits and guidance.
- the first sliding guide structure 2236 may be a guide rail structure protruding from the outer surface of the main shaft 223 , or a guide groove structure concavely formed on the outer surface of the main shaft 223 .
- the first sliding guide structure 2236 includes a first guide portion 22361 and a first limiting portion 22362, the first limiting portion 22362 is connected to the locking portion 2235, and the first guiding portion 22361 is connected to the first limiting portion 22362 away from the locking portion
- the size of the first guide portion 22361 is smaller than the size of the first limit portion 22362
- a first limit step 22363 is formed between the first limit portion 22362 and the outer surface of the main shaft 223.
- the limit step 22363 is used to define the boundary position where the slider 40 slides toward the front end of the main shaft 223 .
- the first guide portion 22361 is connected to the middle of the first limiting portion 22362, the first limiting portion 22362 and the first guide portion 22361 form a T-shaped structure, and the first guide portion 22361 is a strip-shaped structure extending in the axial direction.
- the number of the first sliding guide structures 2236 is two, which are symmetrically distributed on the outer surfaces of the opposite sides of the main shaft 223 .
- the side of the first sliding guide structure 2236 away from the locking portion 2235 is a fixing portion 2237 , and the fixing portion 2237 is used for connecting the fixing base 224 .
- the fixing portion 2237 may also be other clamping structures, for example, the main shaft 223 and the fixing seat 224 are fixed by means of the engagement of the buckle and the clamping groove.
- the main shaft 223 provided by the present application includes a front end A and a rear end B, the front end surface 2231 is the end surface of the front end A, and the second guide structure 2233 and the sealing groove 2234 are arranged on the outer surface of the front end A , the inner surface of the front end A is used to connect the fixing member 222, the inner surface of the main shaft 223 is provided with a limit table 2239, the limit table 2239 faces the tail end B, and the limit table 2239 is used to connect with the elastic locking arm 2222 on the fixing member 222.
- the retaining portion 2223 is matched.
- the tail end B is used for fixed connection with the optical fiber, and the tail end B is provided with a through hole 2238 , and the through hole 2238 penetrates the outer surface and the inner surface of the main shaft 223 .
- the components assembled on the outer surface of the main shaft 223 include the sealing structure 30 , the sliding member 40 , the second elastic member 70 , the fixing seat 224 , the heat shrinkable sleeve 226 and the tail sleeve 225 .
- the sealing structure 30 is an elastic sealing ring, sleeved in the sealing groove 2234 and partially protruding outside the sealing groove 2234, and the part protruding outside the sealing groove 2234 is used for sealingly connecting the optical fiber adapter or the dust cap.
- the sliding member 40 is in the shape of a sleeve, the sliding member 40 includes a front end 41 and a rear end surface 43, the inner surface of the sliding member 40 includes a mating surface 42, and the mating surface 42 is adjacent to the sliding member
- the front end surface 41 of the slider 40 faces the inner space of the slider 40 (it can also be understood as facing the central axis of the slider 40 ).
- the mating surface 42 includes a first area 421 and a second area 422.
- the first area 421 is located between the second area 422 and the front end surface 41 of the slider 40.
- the first area 421 and the second region 422 are arc-shaped surfaces. Referring to FIGS.
- the vertical distance D1 between the first region 421 and the central axis C3 (which can be understood as the radial dimension of the first region 421 ) is greater than the distance between the second region 422 and the central axis
- the first area 421 and the second area 422 can be directly connected, and the first area 421 and the second area 422 can also be two non-adjacent areas on the mating surface 42, that is, the first area 421 and the second area 422 are arranged at intervals .
- the vertical distances between different positions of the first area 421 and the central axis may be equal (as shown in the embodiment shown in FIG. 28 ), that is, the first area 421 is on the sliding member 40 from the front end surface 41 to the rear end surface 43 .
- the direction of extension is parallel to the central axis.
- the vertical distances between different positions of the first area 421 and the central axis may also be unequal (as shown in FIG. 29 ).
- An angle A0 is formed between the extending direction of the direction of the end surface 43 and the central axis.
- the matching surface 42 may be stepped (as shown in the embodiment shown in FIG. 28 ), and the matching surface 42 may also be inclined (as shown in the embodiment shown in FIG. 29 ).
- the first area 421 and/or the second area 422 is provided with an etched structure; or, the mating surface 42 is provided with a groove (the groove can be provided in the first area 421, or the second area 422, or Both the first area 421 and the second area 422 may be provided with grooves), the grooves are used to cooperate with the protrusions on the elastic arms, and the etched structure and the structure of the grooves on the matching surface are beneficial to Improve locking force.
- the setting of the second area 422 may be the same as or different from that of the first area 421, which is not limited in this application, as long as the second area 422 is closer to the central axis than the first area 421 is, the first area 421 and the second
- the morphology of the regions 422 may vary.
- the sleeve-shaped sliding member 40 includes a first plate member B1, a second plate member B2, a third plate member B3 and a fourth plate member B4, the first plate member B1 and the third plate member B4, which are connected in sequence.
- the plate B3 is arranged oppositely, and the second plate B2 and the fourth plate B4 are arranged oppositely.
- the mating surfaces 42 are provided on the inner surfaces of the first board member B1 and the third board member B3.
- the first board B1 and the third board B3 are convex arc structures, and the outer surfaces of the first board B1 and the third board B3 are provided with anti-skid structures.
- the second board B2 and the fourth board B4 are in the form of flat plates, the second board B2 and the fourth board B4 are arranged in parallel with each other, and the distance between the second board B2 and the fourth board B4 is smaller than that of the first board
- the second plate member B2 and the fourth plate member B4 can be in direct contact with the outer surface of the main shaft 223 or connected through a guide structure, and the first plate member B1 and the third plate member B3 are connected to the main shaft 223.
- a gap is formed therebetween, and the gap can be a locking groove for accommodating the second locking structure of the optical fiber adapter or a receiving space for accommodating the second elastic element 70 and the fixing seat.
- the inner surface of the sliding member 40 is further provided with a second sliding guide structure 44 , and the second sliding guide structure 44 is used to cooperate with the first sliding guide structure 2236 on the main shaft 223 .
- the second sliding guide structure 44 is located on the inner surfaces of the second plate B2 and the fourth plate B4.
- the second sliding guide structure 44 includes a second guide portion 441 and a second limit portion 442.
- the second limit portion 441 is located on the side of the second guide portion 442 away from the front end surface 41 of the slider 40.
- the second guide portion 441 is used for It cooperates with the first guide portion 22361 on the outer surface of the main shaft 223 , and the second limit portion 442 is used to cooperate with the first limit portion 22362 on the outer surface of the main shaft 223 .
- the second limit portion 442 faces the side of the front end surface of the slider 40
- a second limit step 4421 is formed, and the second limit step 4421 is used to cooperate with the first limit step 22363 of the first limit portion 22362 on the main shaft 223 to define the sliding member 40 to slide toward the front end of the main shaft 223 boundary position.
- the second limiting portion 442 and the second guiding portion 441 form a T-shaped structure.
- the second limiting portion 442 and the second guiding portion 441 are guide groove structures recessed on the inner surface of the sliding member 40. In other embodiments, the second limiting portion 442 and the second guiding portion 441 are also A guide rail structure may be provided protruding from the inner surface of the slider 40 .
- the inner surface of the sliding member 40 is provided with a stepped positioning surface 45 facing the rear end surface 43 of the sliding member 40 for positioning the second elastic member 70 .
- the second elastic member 70 is elastically connected between the fixing base 224 and the sliding member 40 , and the fixing base 224 is fixedly connected to the fixing portion 2237 on the outer surface of the main shaft 223 .
- the fixing seat 224 includes a front end surface 2241 , the inner surface of the fixing seat 224 is provided with a thread 2243 , and the fixing seat 224 is fixedly connected with the fixing portion 2237 on the main shaft 223 through threaded fitting, and the threaded fitting structure is connected
- the fixed seat 224 and the main shaft 223 can adjust the axial position of the fixed seat 224 on the main shaft 223 by rotating the fixed seat 224 .
- the front end surface 2241 of the fixing seat 224 is used to abut against the second elastic member 70 .
- An outer surface of the fixing base 224 is provided with a fixing groove 2242 , and the fixing groove 2242 is located at a position close to the rear end surface of the fixing base 224 .
- the fixing groove 2242 is used for fixedly connecting the front end of the tail sleeve 225 , and the tail sleeve 225 is sleeved on the periphery of the tail end of the main shaft 223 .
- a heat shrinkable sleeve 226 is provided between the outer surface of the tail end of the main shaft 223 and the tail sleeve 225 .
- a sealed connection between the main shaft 223 and the optical fiber 11 is achieved.
- the dust cap 50 of the optical fiber connector plug 100 provided in this embodiment includes a cap body 51 and an elastic arm 52 .
- the cap body 51 is hollow inside and has an opening, and the elastic arm 52 is formed at the opening position of the cap body 51 .
- the body 51 has a center-symmetric structure, and is provided with a central axis C5 .
- the number of elastic arms 52 is two and is arranged opposite to both sides of the central axis C5 .
- the end of the elastic arm 52 away from the cap body 51 is provided with a first matching portion 53 and a second matching portion 54 , and the first matching portion 53 is located between the second matching portion 54 and the elastic arm 52 .
- the vertical distance K2 between 53 and the central axis C5 is greater than the distance K1 between the second matching portion 54 and the central axis C5.
- the dust cap 50 covers the periphery of the front frame sleeve 21 , and the elastic arm 52 extends into the locking groove formed between the mating surface 42 of the sliding member 40 and the outer surface of the main casing 22 .
- the first matching portion 53 abuts against the first area 421, the second matching portion 54 abuts against the second area 422, and the first matching portion 53 and the The clamping force of the two mating portions 54 fixes the dust cap 50 to the fiber optic connector plug 100 .
- the assembly and mating relationship between the components in the optical fiber connector plug 100 provided by the first embodiment are as follows: (description in a possible assembly sequence, refer to FIG. 4 , FIG. 5 and FIG. 6 ).
- the fixing member 222 and the main shaft 223 are designed as separate structures, which is convenient to manufacture and relatively easy to assemble.
- the fixing member 222 is fixedly connected to the main shaft 223 by extending into the inner space of the main shaft 223, and the fixing member 222 occupies the interior of the main shaft 223. space, and will not increase the peripheral size of the main shaft 223, which is beneficial to the miniaturized design.
- the fixing member 222 can also have a one-piece structure with the main shaft 223 , that is, the front end of the main shaft 223 is directly integrally formed into the front end portion of the fixing member 222 .
- the one-piece structure with the main shaft 223 has the advantage of being light and thin. "Thin” refers to the dimension in the radial direction, because in the radial direction, the fixing member 222 and the main shaft 223 do not have overlapping parts for assembly and connection.
- the front frame sleeve 21 is sleeved from one side of the front end of the ferrule 12 to the periphery of the mounting member 221 , the second plane 2142 of the second limiting structure 214 in the front frame sleeve 21 and the first limiting structure 1241 of the ferrule 12
- the second plane 2142 of the front frame cover 21 and the contact surface 2216 of one of the second stop structures 2213 of the mounting member 221 are coplanar
- the second plane 2142 of the front frame cover 21 and The contact surfaces 2216 of the other second blocking structures 2213 of the mounting member 221 are oppositely disposed on both sides of the ferrule 12 .
- the fixed connection between the front frame sleeve 21 and the installation member 221 is completed by the cooperation between the elastic hooks 2212 on the installation member 221 and the clamping holes 215 on the front frame sleeve 21 .
- the protrusion 2232 on the front end surface 2231 of the main shaft 223 extends into the first cutout 216 on the rear end surface of the front frame sleeve 21 to position the front frame sleeve 21 and the main shaft 223 in the circumferential direction.
- the rear end surface 212 of the front frame sleeve 21 and the rear end surface 2214 of the mounting member 221 are coplanar, the first cutout 216 and the second cutout 2218 are facing each other in the radial direction, and the protrusion 2232 on the main shaft 223 coincides with the first cutout 216 at the same time. Fits with the second cutout 2218.
- the front end surface 121 of the ferrule 12 is flush with the front end surface 211 of the front frame sleeve 21 , or the front end surface 121 of the ferrule 12 is located between the front end surface 211 of the front frame sleeve 21 in the axial direction. between the rear end surfaces 213 of the front frame sleeve 21 . It can also be understood that the vertical projection of the front end surface 121 of the ferrule 12 on the front frame sleeve 21 is located on the front end surface 211 of the front frame sleeve 21 or the inner surface of the front frame sleeve 21 .
- the front end of the slider 40 faces the tail end of the main shaft 223 (the optical fiber should pass through the slider 40 ), the slider 40 is sleeved on the outer surface of the main shaft 223 , and the first surface of the inner surface of the slider 40 passes through the first
- the second sliding guide structure 44 cooperates with the first sliding guide structure 2236 on the outer surface of the main shaft 223 to realize the positioning of the sliding member 40 and the main shaft 223 in the circumferential direction.
- the second sliding guide structure in this embodiment is a groove structure. The position indicated by the lead 44 in 6 is the inner wall of the groove, and the first sliding guide structure 2236 is accommodated in the groove. Referring to FIGS.
- the axial direction is realized by the cooperation of the second limiting step 4421 of the second limiting portion 442 of the sliding member 40 and the first limiting step 22363 of the first limiting portion 22362 on the outer surface of the main shaft 223 .
- the direction defines the position between the slider 40 and the spindle 223 .
- the second elastic member 70 is sleeved on the main shaft 223 , and one end of the second elastic member 70 is installed in the space between the sliding member 40 and the main shaft 223 and abuts against the step positioning surface 45 on the inner surface of the sliding member 40 .
- the fixing base 224 is installed on the fixing portion 2237 on the main shaft 223 , the front end of the fixing base 224 abuts the other end of the second elastic member 70 , and the fixing base 224 partially extends into the space between the sliding member 40 and the main shaft 223 .
- the second elastic member 70 is in a compressed state, and the sliding member 40 is pushed to the first position by the elastic force, that is, the second limiting step 4421 of the second limiting portion 442 of the sliding member 40 and the outer surface of the main shaft 223
- the sliding member 40 can slide between the first position and the second position, the second position can be determined by the limiting structure on the main shaft 223, and the second position can also have no determined position, as long as it is located in the first position in the axial direction Just move away from the side of the ferrule.
- the sliding member 40 and the locking portion 2235 on the main shaft 223 together form a first locking structure L1 , and the first locking structure L1 is used to cooperate with the second locking structure on the optical fiber adapter 200 to lock the The fiber optic connector plug 100 is secured to the fiber optic connector plug.
- a locking groove 47 is formed between the mating surface 42 of the sliding member 40 and the outer surface of the main casing 22 , and the locking groove 47 is used to cooperate with the elastic arm of the second locking structure.
- the opening position of the locking groove 47 is located between the front end surface 41 of the sliding member 40 and the outer surface of the main housing 22 .
- the matching surface 42 is the inner wall of the locking groove 47 , and the matching surface 42 faces In the main casing 22 , the first area 421 is located between the second area 422 and the opening of the locking groove, and the vertical distance between the first area 421 and the main casing 22 is greater than that of the second area 422 The vertical distance from the main casing 22 .
- the first area 421 is disposed opposite to the locking portion 2235
- the second area 422 is disposed opposite to the outer surface of the main casing 22 .
- the mating surface 42 (including the first area 421 and the second area 422 ) is disposed opposite to the outer surface of the main casing 22 .
- the position of the optical fiber is adjusted.
- Glue is dispensed at 1128, and the reinforcement layer 112 of the optical fiber 11 and the inner surface of the main shaft 223 are fixed by glue.
- a through hole 2238 for glue filling is provided at the tail end B of the main shaft 223, and the optical fiber is fixed by means of glue filling, Since the glue fills the gap between the reinforcing layer 112 and the main shaft 223, the surface structure of the reinforcing layer 112 itself is also utilized, and the surface of the reinforcing layer 112 has a glue filling space, so that the glue can fully contact the optical fiber 11 and the main shaft 223, and the fixing effect is improved.
- the heat shrinkable sleeve 226 is sleeved at the position B of the tail end of the main shaft 223, so that part of the heat shrinkable sleeve 226 is fixed on the outer surface of the tail end of the main shaft 223, and the other part of the heat shrinkable sleeve 226 is fixed on the unextended part.
- the tail sleeve 225 is fixed on the periphery of the heat shrinkable sleeve 226 , and the front end of the tail sleeve 225 is fixedly connected to the fixing groove 2242 at the rear end of the fixing base 224 .
- One-dimensional barcodes can be engraved on the outer surface of the boot 225 by means of stamping, laser marking and other technologies for visual identification.
- the sealing structure 30 is sleeved at the sealing groove 2234.
- the sealing ring is sealed and connected between the main shaft 223 and the inner surface of the optical fiber adapter 200.
- the optical fiber connector provided in this embodiment The plug 100 is an optical fiber connector plug 100 for outdoor use and has sealing requirements.
- the front end of the main shaft 223 provided by the present application extends into the optical fiber adapter 200 to achieve sealing through the sealing structure 30, and the rear end of the main shaft 223 is sealed by the heat shrinkable sleeve 226 between the main shaft 223 and the optical fiber. It is only necessary to configure the primary sealing structure 30, that is, the sealed connection between the optical fiber connector plug 100 and the optical fiber adapter 200 can be realized.
- optical fiber adapter 200 matched with the optical fiber connector plug 100 provided in the first embodiment is as follows.
- the fiber optic adapter 200 includes a main body sleeve 201 and a ferrule sleeve 202, the ferrule sleeve 202 is connected inside the main body sleeve 201, and the ferrule sleeve 202 can be connected with the main body sleeve 201 is a one-piece structure.
- the main body sleeve 201 includes a first end surface 2011 and a second end surface 2012. Inside the main body sleeve 201, a first accommodating space 2013 located inside the first end surface 2011 and a second accommodating space 2014 located inside the second end surface 2012 are formed.
- the ferrule sleeve 202 is provided with a ferrule accommodating space 2022 , and the ferrule accommodating space 2022 is communicated between the first accommodating space 2013 and the second accommodating space 2014 .
- the first accommodating space 2013 is used to accommodate one optical fiber connector plug 100
- the second accommodating space 2014 is used to accommodate another optical fiber connector plug 100
- the ferrule accommodating space 2022 in the ferrule sleeve 202 is used to accommodate two Ferrules for fiber optic connector plugs.
- the first accommodating space 2013 is used for plugging the outdoor optical fiber connector plug (ie, the optical fiber connector plug 100 provided in the first embodiment), and the second accommodating space 2014 is used for plugging the indoor optical fiber connector plug.
- the optical fiber connector plug, the internal structure of the second accommodating space 2013 and the specific structure of the indoor optical fiber connector plug are not limited in this application.
- the main body sleeve 201 includes a main body portion 203 and a second locking structure L2, the second locking structure L2 is disposed at one end of the main body portion 203, and the second locking structure L2 is located between the first accommodating space 2013 and the outside world.
- the second locking structure L2 includes a slot 204 and an elastic arm 205.
- the elastic arm 205 is connected to one end of the main body portion 203.
- the main body portion 203 is located between the ferrule sleeve 202 and the elastic arm 205 in the axial direction.
- the slot 204 is located on the inner surface of the main body sleeve 201 .
- the elastic arm 205 of the optical fiber connector plug 100 extends from one end of the main body portion 203 along the axial direction of the main body sleeve 201, the elastic arm 205 includes a first section 2051 and a second section 2052, the first section 2051 and the second section 2052. A section is connected between the second section 2052 and the main body 203 , and the outer surface of the elastic arm 205 is the surface of the elastic arm 205 facing away from the first accommodating space 2013 .
- the vertical distance R1 from the outer surface of the first section 2051 to the central axis C6 of the main body sleeve 201 is greater than the distance R1 from the outer surface of the second section 2052 to the central axis C6 of the main body sleeve 201 Vertical distance R2.
- part of the clamping groove 204 is located on the inner surface of the main body part 203
- part of the clamping groove 204 is located on the inner surface of the elastic arm 205 (specifically, the inner surface of the first section 2051 ), in the radial direction of the main body sleeve 201
- the first section 2051 faces a part of the card slot 204
- the second section 2052 is located at the periphery of the card slot 204 .
- the outer surface of the elastic arm 205 is stepped, that is, a stepped surface is formed between the first section 2051 and the second section 2052 .
- the extending direction from the main body portion 203 to the end of the second segment 2052 away from the main body portion 203 is the extending direction of the elastic arm 205
- the extending direction of the elastic arm 205 is the same as that of the main body sleeve.
- An included angle A6 is formed between the axial directions of the barrel 201.
- FIG. 34 schematically shows that the elastic arm 205 extends obliquely relative to the axial direction. feature (i.e. mating surface) to be set.
- the outer surface of the first section 2051 and/or the outer surface of the second section 2052 is provided with an etched structure; or, the outer surface of the elastic arm 205 is provided with a protrusion, the The protrusions are used to mate with grooves on the slider 40 of the fiber optic connector plug 100 .
- the inner surface of the main body 203 of the main body sleeve 201 is provided with a guide key 206.
- the guide key 206 is protruded toward the first receiving space 2013, and the guide key 206 is used for connecting with the front frame.
- the first guide structure 213 on the sleeve 21 cooperates to provide guidance during the insertion of the fiber optic connector plug 100 into the fiber optic adapter 200 .
- a first slot 207 is formed between the main body sleeve 201 and the ferrule sleeve 202. The first slot 207 is used to accommodate the front frame sleeve 21 in the optical fiber connector plug 100.
- the optical fiber adapter 200 provided in this application passes through the main body the engagement of the first slot 207 between the sleeve 201 and the ferrule sleeve 202 with the front frame sleeve 21 of the optical fiber connector plug 100, and the contact between the inner surface of the main body sleeve 201 and the outer surface of the front frame sleeve 21, and
- the guide key 206 is used to cooperate with the first guide structure 213 on the front frame sleeve 21 to realize the matching between the optical fiber adapter 200 and the optical fiber connector plug 100.
- For the optical fiber adapter 200 its structure is simplified.
- the inner surface of the main body sleeve 201 has achieved the alignment of the optical fiber connector plug 100 inserted therein, and the radial dimension can be designed to match the front frame sleeve 21 of the optical fiber connector plug 100, which has the advantage of small size.
- the optical fiber adapter 200 provided by the present application further includes a ceramic sleeve 208 , and the ceramic sleeve 208 is installed inside the ferrule sleeve 202 .
- the ceramic sleeve 208 is provided with a cutout 2082, and the cutout 2082 extends from one end of the ceramic sleeve 208 to the other end in the axial direction. A tight fit between the ferrule sleeves 202 .
- the inner space of the ceramic sleeve 208 is used to accommodate the ferrule.
- FIG. 36 is a schematic cross-sectional view of the optical fiber connector plug 100 provided in the first embodiment and the corresponding optical fiber adapter 200 after they are inserted into each other.
- FIG. 37 is an enlarged schematic diagram of part I in FIG. 36
- FIG. 38 is an enlarged schematic diagram of part II in FIG. 36 .
- FIG. 39 is another schematic cross-sectional view of the optical fiber connector plug 100 provided in the first embodiment after the corresponding optical fiber adapter 200 is inserted.
- FIG. 40 is an enlarged schematic view of part III in FIG. 39 .
- the sealing structure 30 achieves a sealed connection between the fiber optic connector plug 100 and the corresponding fiber optic adapter 200 inside the fiber optic adapter 200 .
- the front frame sleeve 21 of the optical fiber connector plug 100 is inserted into the first slot 207, the ferrule 12 is inserted into the ferrule sleeve 202, and the ceramic
- the sleeve 208 is surrounded, and the outer surface of the front frame sleeve 21 contacts the inner surface of the main body sleeve 201 .
- FIG. 36 shows the locked state after the optical fiber connector plug 100 and the optical fiber adapter 200 are inserted into each other.
- the sliding member 40 is in the first position, and the locking portion 2235 of the optical fiber connector plug and the optical fiber adapter are in the locked state.
- the slot 204 is matched, the first area 421 of the fitting surface 42 is pressed against the first section 2051 of the elastic arm 205, and the second area 422 of the fitting surface 42 is pressed against the second section 2052 of the elastic arm 205 to realize double steps locking structure.
- FIG. 39 shows the unlocked state after the fiber optic connector plug 100 and the fiber optic adapter 200 are inserted into each other.
- the slider 40 is in the second position, and the first area 421 of the mating surface 42 is located at the edge of the elastic arm 205
- the periphery of the second segment 2052, and the first region 421 and the second segment 2052 have no resisting relationship, the first region 421 and the second segment 2052 are separated from each other and a gap is formed therebetween, and the second region 422 is facing the optical fiber
- the outer surface of the main shaft 223 of the connector plug 100 Due to the gap formed between the mating surface 42 and the elastic arm 205, the elastic arm 205 can be opened. Therefore, at this time, although the locking portion 2235 of the optical fiber connector plug is located in the slot 204 of the optical fiber adapter, the optical fiber connector can still The plug 100 is pulled out of the fiber optic adapter 200 .
- optical fiber connector plug The detailed description of the optical fiber connector plug provided by the second embodiment is as follows.
- Fig. 41 is a perspective view of the optical fiber connector plug 100' provided by the second embodiment
- Fig. 42 is an exploded perspective view of the optical fiber connector plug 100' provided by the second embodiment.
- the optical fiber connector plug 100' includes an optical fiber 11', a ferrule 12', a front frame sleeve 21', a mounting member 221', a main shaft 223', a tail sleeve 225' and a heat shrinkable sleeve 226', The sealing structure 30', the sliding member 40', and the first elastic member 60'.
- the main shaft 223' is provided with a locking portion 2235', and the locking portion 2235' and the sliding member 40' constitute a first locking structure L1'.
- the optical fiber connector plug 100' provided by the second embodiment is different from the optical fiber connector plug 100 provided by the first embodiment in that the structure of the main shaft 223' and the structure of the slider 40'.
- the structural features on the main shaft 223' that are different from those of the main shaft in the optical fiber connector plug 100 provided in the first embodiment will be described in detail.
- the optical fiber connector plug 100 ′ provided in this embodiment does not include the structure of the fixing member 222 independent of the main shaft in the optical fiber connector plug 100 provided in the first embodiment. It can be understood that this embodiment In this way, a structural feature similar to the function of a fixing member is integrated on the main shaft 223', that is, a protruding ring structure 222' integrally formed to the inner surface of the main shaft 223' is provided at the inner edge of the front end surface 2231' of the main shaft 223'. The outer surface of the structure 222' is provided with threads for connecting the mounting member 221'.
- the locking portion 2235' provided on the outer surface of the main shaft 223' is located on the side of the sealing groove 2234' away from the front end surface 2231'.
- the locking portion 2235' includes an elastic arm 22351 and a clamping block 22352.
- One end of the elastic arm 22351 is fixedly connected with the outer surface of the main shaft 223'.
- one end of the elastic arm 22351 is integral with the main shaft 223'. formula structure. Only one end of the elastic arm 22351 is connected to the main shaft 223', the rest of the elastic arm and the main shaft 223' are suspended in a structure opposite to the main shaft 223', and a gap 22353 is provided between the elastic arm 22351 and the main shaft 223'.
- the clamping block 22352 is fixedly connected to the other end of the elastic arm 22351, the end of the elastic arm 22351 connected with the main shaft 223' is the connecting end, and the clamping block 22352 is located on the elastic arm 22351 at a position away from the connecting end.
- the blocking block 22352 protrudes from the surface of the elastic arm 22351 facing away from the main shaft 223'.
- the number of the locking parts 2235' is two, which are symmetrically distributed on opposite sides of the main shaft 223'.
- the outer surface of the main shaft 223' is further provided with a latching structure 701, and the latching structure 701 is used to cooperate with the sliding member 40' to limit the sliding member 40' in the first position.
- the locking structure 701 is a limit block protruding from the outer surface of the main shaft 223 ′.
- the number of the locking structures 701 is two and they are arranged at intervals, that is, a limiting concave is formed between the two locking structures 701 .
- the sliding member 40 ′ includes a sliding body 403 slidably connected with the main shaft 223 ′ and a resisting portion 404 connected to one end of the sliding body 403 .
- the sliding body 403 In the shape of a sleeve, the resisting portion 404 extends from the inner surface of one end of the sliding body 403 , the resisting portion 404 has an arc-shaped sheet structure, and the resisting portion 404 can slide into the gap 22353 .
- the number of the resisting portions 404 is also two, which are symmetrically distributed on opposite sides of the sliding body 403 .
- the sliding member 40 ′ includes a sliding positioning structure 405 , and the sliding positioning structure 405 includes a connecting portion 4051 connected to the sliding body 403 and a protrusion structure 4052 protruding from the connecting portion 4051 .
- a strip-shaped slit 4031 is formed, and the setting of the slit 4031 makes the connecting portion 4052 easy to produce radial elastic deformation under the action of external force. When snapped into the limiting groove 702 , the sliding member 40 ′ can be limited in the first position.
- the optical fiber adapter 200' includes a main body sleeve 201' and a ferrule sleeve 202', and the main body sleeve 201' is provided with a second locking structure L2'.
- the difference between the optical fiber adapter 200' and the optical fiber adapter 200 is that the second locking structure L2' of the optical fiber adapter 200' is different from the second locking structure L2 of the optical fiber adapter 200.
- the second locking structure L2 ′ is a snap groove formed on the inner surface of the main body sleeve 201 , and the snap groove includes a limit groove 2016 recessed on the inner surface of the main body portion, A slot or hole 2017 at the bottom of the slot 2016, the limiting slot 2016 is used to cooperate with the elastic arm 22351 of the locking part 2235' on the optical fiber connector plug 100', and the slot or hole 2017 is used for It is matched with the locking block 22352 of the locking part 2235' on the optical fiber connector plug 100'.
- FIG. 51 is a schematic diagram of the insertion state of the optical fiber connector plug 100 ′ and the optical fiber adapter 200 ′
- FIG. 52 is an enlarged schematic view of the IV part in FIG. 51
- FIG. 52 is the optical fiber connector plug 100 ' and the optical fiber adapter 200' are in a locked state
- Fig. 53 is a schematic diagram of the optical fiber connector plug 100' and the optical fiber adapter 200' in an unlocked state.
- the elastic arm 22351 of the locking portion 2235' is located in the limiting groove 2016, and the locking block 22352 is inserted into the groove or hole 2017.
- the resisting portion 404 is slid into the gap 22353 .
- the resisting portion 404 can resist the elastic arm 22351 , and the locking block 22352 can be resisted in the slot or hole 2017 . Locking between the fiber optic connector plug 100' and the corresponding fiber optic adapter 200' is achieved.
- the blocking portion 404 is separated from the gap 22353.
- the elastic arm 22351 due to the existence of the gap 22353 between the elastic arm 22351 and the main shaft 223', the elastic arm 22351 is in its own Under the action of elastic deformation, it swings into the gap 22353, so that the blocking block 22352 leaves the slot or hole 2017 to realize unlocking.
- optical fiber connector plug The detailed description of the optical fiber connector plug provided by the third embodiment is as follows.
- Fig. 54 is a perspective view of the optical fiber connector plug 100" provided by the third embodiment
- Fig. 55 is a perspective exploded view of the optical fiber connector plug 100" provided by the third embodiment.
- the optical fiber connector plug 100" includes an optical fiber 11", a ferrule 12", a front frame sleeve 21", a mounting member 221", a main shaft 223", a tail sleeve 225" and a heat shrinkable sleeve 226",
- the sealing structure 30 the sliding member 40", and the first elastic member 60.
- the main shaft 223” is provided with a locking portion 2235", and the locking portion 2235" and the sliding member 40" constitute a first locking structure L1".
- the optical fiber connector plug 100" provided by the third embodiment is different from the optical fiber connector plug 100' provided by the second embodiment in that the structure of the main shaft 223", the structure of the locking portion 2235", and the sliding member 40" Structure.
- the difference between the main shaft 223 ′′ provided in this embodiment and the main shaft 223 ′ of the optical fiber connector plug 100 ′ provided in the second embodiment is that the main shaft 223 ′′ is not provided with a locking part of an integrated structure.
- the locking part 2235'' and the main shaft 223'' are in a split structure.
- the outer surface of the main shaft 223'' is provided with a connecting part 22354 for connecting the locking part 2235''.
- the bump structure on the outer surface, the specific shape of the connecting portion 22354 may be a square, a circle, a triangle, a polygon, etc., which is not limited in this application.
- the number of the connecting portion 22354 is two, symmetrically distributed on both sides of the main shaft 223′′.
- the locking portion 2235" has a sleeve-like structure, and the inner surface of the locking portion 2235" is provided with a positioning groove 22355, a locking groove 22356 and a button hole 22357.
- the positioning grooves 22355 are used to cooperate with the outer surface connecting part 22354 of the main shaft 223", so as to fixedly connect the locking part 2235" to the main shaft 223".
- the number of positioning grooves 22355 is two, symmetrically distributed in the center of the locking part 2235" both sides of the shaft.
- the button hole 22357 is located at the bottom of the locking groove 22356, and the button hole 22357 is a through hole structure, so that the inner and outer surfaces of the locking portion 2235" communicate with each other.
- the extending direction of the locking groove 22356 is the axial direction of the locking portion 2235". direction, and an opening of the locking groove 22356 is formed at one end face of the locking portion 2235".
- the number of the button holes 22357 and the locking grooves 22356 are both two, which are symmetrically distributed on the central axis of the locking portion 2235". the other sides.
- the locking portion 2235" is sleeved on the main shaft 223", and the connecting portion 22354 is snapped into the positioning groove 22355 to realize the connection between the locking portion 2235" and the main shaft 223".
- the locking groove A receiving space is formed between the bottom wall of 22356 and the main shaft 223
- the locking portion 2235" at the bottom wall of the locking groove 22356 constitutes a locking arm.
- the button hole 22357 is provided on the locking arm, It can be a structure of a card slot or a card hole, and a receiving space is formed between the locking arm and the outer surface of the main shaft 223".
- the receiving space is used for receiving the second locking structure of the optical fiber adapter.
- the hole 22357 is used for the second locking structure to cooperate.
- the structure of the slider 40 ′′ provided in this embodiment can be the same as the structure of the slider 40 ′ in the optical fiber connector plug 100 ′ provided in the second embodiment, and the slider 40 ′′ is slidably connected to the main shaft 223",
- the sliding member 40" includes a sliding body 403' and a resisting part 404' connected to one end of the sliding body 403', the resisting part 404' can be moved into the receiving space and abut against the first part of the optical fiber adapter. Two locking structure.
- optical fiber adapter 200 matched with the optical fiber connector plug 100" provided by the third embodiment.
- the optical fiber adapter 200" includes a main body sleeve 201" and a ferrule sleeve 202", and the main body sleeve 201" is provided with a second locking structure L2".
- the optical fiber adapter 200" and the optical fiber adapter 200 have a The difference is that the second locking structure L2 ′′ of the optical fiber adapter 200 ′′ is different from the second locking structure L2 of the optical fiber adapter 200 .
- the second locking structure L2" includes a snap portion 2019 and a connecting segment 2018, and the connecting segment 2018 is connected to the snap portion 2019 and the end surface 2011" of the main body sleeve 201".
- the snap portion 2019 is protruded from the surface of the connecting section 2018 away from the central axis of the main body sleeve 201", and the connecting section 2018 is used to extend into the fiber optic connector plug 100".
- the connecting section 2018 is used for matching with the locking groove 22356
- the buckle portion 2018 is used for matching with the button hole 22357 .
- FIG. 63 is a schematic diagram of the insertion state of the fiber optic connector plug 100" and the fiber optic adapter 200
- FIG. 64 is an enlarged schematic view of the V part in FIG. 63, and FIG. ” and the optical fiber adapter 200 ′′ are in a locked state
- FIG. 65 is a schematic diagram of the optical fiber connector plug 100 ′′ and the optical fiber adapter 200 ′′ in an unlocked state.
- the second locking structure L2" of the optical fiber adapter 200" is aligned at one end face of the locking portion 2235" to form the lock Hold the opening position of the groove 22356, insert the optical fiber connector plug 100" into the optical fiber adapter 200", so that the connecting section 2018 extends into the locking groove 22356, and the buckle portion 2019 is located at the position of the button hole 22357. Then slide the sliding member 40 ”, so that the resisting portion 404’ slides into the gap between the connecting segment 2018 and the main shaft 223”. In this state, the resisting portion 404’ can resist the connecting segment 2018, and the snap portion 2019 is resisted in the snap hole 22357. The locking between the fiber optic connector plug 100" and the corresponding fiber optic adapter 200" is achieved.
- the blocking portion 404 ′ leaves the gap between the connecting section 2018 and the main shaft 223 ′′.
- the connecting section 2018 moves toward the main shaft under the action of its own elastic deformation.
- One side of 223" swings, so that the buckle part 2019 can be disengaged from the buckle hole 22357 to realize unlocking.
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- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Optics & Photonics (AREA)
- Mechanical Coupling Of Light Guides (AREA)
- Details Of Connecting Devices For Male And Female Coupling (AREA)
- Light Guides In General And Applications Therefor (AREA)
Abstract
Description
Claims (21)
- 一种光纤连接器插头,其特征在于,包括:光纤和固定至所述光纤前端的插芯;主壳体,呈套筒状,套设在所述光纤的***;第一锁持结构,设于所述主壳体的外表面,用于与光纤适配器上的第二锁持结构配合,以将所述光纤连接器插头固定至所述光纤连接器,所述第一锁持结构包括滑动件和锁固部,所述锁固部固定在所述主壳体的外表面,所述滑动件于第一位置和第二位置之间滑动连接至所述主壳体;沿所述主壳体的轴向方向,所述锁固部位于所述滑动件和所述插芯之间;所述滑动件位于第一位置时,所述滑动件与所述锁固部配合共同锁住所述第二锁持结构;所述滑动件位于所述第二位置时,实现所述锁固部与所述第二锁持结构之间的解锁。
- 根据权利要求1所述的光纤连接器插头,其特征在于,还包括设于所述主壳体的外表面的密封结构,沿所述主壳体的轴向方向,所述密封结构位所述第一锁持结构和所述插芯之间,所述密封结构用于与所述光纤适配器的内表面密封连接。
- 根据权利要求1或2所述的光纤连接器插头,其特征在于,所述锁固部用于与所述第二锁持结构的卡槽配合,所述滑动件与所述主壳体之间形成锁持槽,所述锁持槽用于与所述第二锁持结构的弹性臂配合,所述锁持槽的开口位置位于所述滑动件的一端和所述主壳体之间,所述滑动件包括形成于所述锁持槽内壁的配合面,所述配合面朝向所述主壳体,所述配合面包括第一区域和第二区域,所述第一区域位于所述第二区域和所述锁持槽的开口之间,所述第一区域与所述主壳体之间的垂直距离大于所述第二区域与所述主壳体之间的垂直距离。
- 根据权利要求3所述的光纤连接器插头,其特征在于,当所述滑动件位于所述第一位置时,所述第一区域与所述锁固部相对设置,所述第二区域与所述主壳体的外表面相对设置,当所述滑动件位于所述第二位置时,所述配合面与所述主壳体的外表面相对设置。
- 根据权利要求3或4所述的光纤连接器插头,其特征在于,所述配合面呈阶梯状;或者,所述配合面呈斜面状。
- 根据权利要求3-5任一项所述的光纤连接器插头,其特征在于,所述第一区域和/或所述第二区域设有蚀纹结构;或者,所述配合面设有凹槽,所述凹槽用于与所述弹性臂上的突出部配合。
- 根据权利要求1或2所述的光纤连接器插头,其特征在于,所述锁固部包括弹性臂和卡块,所述弹性臂的一端与所述主壳体固定连接,所述卡块固定连接至所述弹性臂的另一端且突出于所述弹性臂背离所述主壳体的表面,所述弹性臂与所述主壳体之间设有间隙,所述滑动件包括与所述主壳体滑动连接的滑动主体和连接至所述滑动主体的一端的抵挡部,所述弹性臂用于与所述光纤适配器上的卡扣槽配合,所述抵挡部能够移至所述间隙内且抵持所述弹性臂,以将所述弹性臂抵持在所述卡扣槽内。
- 根据权利要求1或2所述的光纤连接器插头,其特征在于,所述锁固部包括锁持臂,所述锁持臂与所述主壳体的外表面之间设有收容空间,沿所述主壳体的轴向方向,所述收容空间的相对端呈开口状,所述锁持臂上设有卡槽或卡孔,所述收容空间用于***述第 二锁持结构,所述卡槽或卡孔用于所述第二锁持结构配合,所述滑动件包括与所述主壳体滑动连接的滑动主体和连接至所述滑动主体的一端的抵挡部,所述抵挡部能够移至所述收容空间内且抵持所述第二锁持结构。
- 根据权利要求1-8任一项所述的光纤连接器插头,其特征在于,所述滑动件与所述主壳体之间弹性连接,通过弹力将所述滑动件保持在所述第一位置;或者,所述滑动件与所述主壳体之间设有限位结构,所述限位结构用于将所述滑动件限位在所述第一位置。
- 一种光纤适配器,其特征在于,包括主体套筒和插芯套筒,所述插芯套筒连接在所述主体套筒的内部,所述主体套筒内设连通至所述插芯套筒内部空间的第一容纳空间,所述第一容纳空间用于收容如权利要求1-9任一项所述的光纤连接器插头,所述插芯套筒用于***述光纤连接器的所述插芯,所述主体套筒包括第二锁持结构,所述第二锁持结构位于所述第一容纳空间与外界相通的第一开口位置处,且用于与所述光纤连接器插头的所述第一锁持结构配合。
- 如权利要求10所述的光纤适配器,其特征在于,所述第二锁持结构包括卡槽和弹性臂,所述卡槽形成于所述主体套筒的内表面,所述主体套筒包括主体部,所述弹性臂位于所述主体部的一端,且沿所述主体套筒的轴向延伸,所述弹性臂包括第一段和第二段,所述第一段连接在所述第二段和所述主体部之间,所述弹性臂的外表面为所述弹性臂背离所述第一容纳空间的表面,所述第一段的外表面至所述主体套筒的中心轴的垂直距离大于所述第二段的外表面至所述主体套筒的中心轴的垂直距离。
- 如权利要求11所述的光纤适配器,其特征在于,在所述主体套筒的径向方向上,所述第一段正对部分所述卡槽,所述第二段位于所述卡槽的***。
- 如权利要求11或12所述的光纤适配器,其特征在于,所述弹性臂的外表面呈阶梯状;或者,所述弹性臂的延伸方向与所述主体套筒的轴向方向之间形成夹角,所述弹性臂的延伸方向为从所述主体部至所述第二段远离所述主体部的一端的延伸方向。
- 如权利要求11或12所述的光纤适配器,其特征在于,所述第一段的外表面和/或所述第二段的外表面设有蚀纹结构;或者,所述弹性臂的外表面设有突出部,所述突出部用于与所述光纤连接器插头的所述滑动件上的凹槽配合。
- 如权利要求10所述的光纤适配器,其特征在于,所述第二锁持结构为形成在所述主体套筒的内表面的卡扣槽,所述卡扣槽包括凹设在所述主体部内表面的限位槽和位于所述槽底部的槽或孔,所述限位槽用于与所述光纤连接器插头上的所述锁固部的弹性臂配合,所述槽或孔用于与所述光纤连接器插头上的所述锁固部的卡块配合。
- 如权利要求10所述的光纤适配器,其特征在于,所述主体套筒包括主体部,所述第二锁持结构位于所述主体部的一端且包括卡扣部和连接段,所述连接段连接在所述卡扣部和所述主体部之间,所述卡扣部突出设置在所述连接段背离所述主体套筒的中心轴的表面,所述连接段用于伸入所述光纤连接器插头上的所述锁持臂与所述主壳体之间的收容空间内,所述卡扣部用于所述光纤连接器插头上的所述锁持臂上的卡槽或卡孔配合。
- 一种连接器组件,其特征在于,包括如权利要求1-9任一项所述的光纤连接器插头和如权利要求10至16任一项所述的光纤适配器。
- 一种通信设备,其特征在于,包括外壳和连接至所述外壳的如权利要求10-16任一 项所述的光纤适配器,所述外壳设有插口,所述光纤适配器设置在所述外壳的内部,所述插口正对所述光纤适配器的第一容纳空间。
- 根据权利要求18所述的通信设备,其特征在于,所述插口的数量为多个,且排列成一排,所述光纤适配器的数量亦为多个,对应设置在所插口位置。
- 根据权利要求18所述的通信设备,其特征在于,所述插口的数量为多个,且呈至少两排的排列方式布置在所述壳体上,所述光纤适配器的数量亦为多个,对应设置在所插口位置。
- 根据权利要求18-20任一项所述的通信设备,其特征在于,所述通信设备还包括如权利要求1至9任一项所述的光纤连接器插头,所述光纤连接器插头用于与所述光纤适配器配合。
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KR1020237009848A KR20230056731A (ko) | 2020-08-27 | 2021-03-23 | 광학 파이버 커넥터 플러그, 광학 파이버 어댑터, 커넥터 조립체, 및 통신 디바이스 |
EP21859554.4A EP4191297A4 (en) | 2020-08-27 | 2021-03-23 | FIBER OPTIC CONNECTOR, FIBER ADAPTER, CONNECTOR ASSEMBLY AND COMMUNICATION DEVICE |
JP2023513328A JP2023538689A (ja) | 2020-08-27 | 2021-03-23 | ファイバコネクタプラグ、ファイバアダプタ、コネクタアセンブリ、および通信デバイス |
PE2023000736A PE20231496A1 (es) | 2020-08-27 | 2021-03-23 | Enchufe macho de fibra, adaptador de fibra, ensamblaje de conector, y dispositivo de comunicaciones |
CN202190000445.3U CN220894583U (zh) | 2020-08-27 | 2021-03-23 | 光纤连接器插头、光纤适配器、连接器组件及通信设备 |
MX2023002355A MX2023002355A (es) | 2020-08-27 | 2021-03-23 | Enchufe de conector de fibra, adaptador de fibra, conjunto de conector, y dispositivo de comunicaciones. |
CA3193295A CA3193295A1 (en) | 2020-08-27 | 2021-03-23 | Fiber connector plug, fiber adapter, connector assembly, and communications device |
US18/174,307 US20230221496A1 (en) | 2020-08-27 | 2023-02-24 | Fiber Connector Plug, Fiber Adapter, Connector Assembly, and Communications Device |
ZA2023/02901A ZA202302901B (en) | 2020-08-27 | 2023-02-27 | Fiber connector plug, fiber adapter, connector assembly, and communications device |
CONC2023/0003344A CO2023003344A2 (es) | 2020-08-27 | 2023-03-17 | Enchufe macho de fibra, adaptador de fibra, ensamblaje de conector, y dispositivo de comunicaciones |
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CN202010880697.1A CN112068256B (zh) | 2020-08-27 | 2020-08-27 | 光纤连接器插头、光纤适配器、连接器组件及通信设备 |
CN202010880697.1 | 2020-08-27 |
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US18/174,307 Continuation US20230221496A1 (en) | 2020-08-27 | 2023-02-24 | Fiber Connector Plug, Fiber Adapter, Connector Assembly, and Communications Device |
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US (1) | US20230221496A1 (zh) |
EP (1) | EP4191297A4 (zh) |
JP (1) | JP2023538689A (zh) |
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CN (3) | CN112068256B (zh) |
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CN114137674A (zh) * | 2021-10-28 | 2022-03-04 | 深圳新澳科电缆有限公司 | 一种具有防盗功能的光缆接续盒 |
CN116500729A (zh) * | 2023-03-16 | 2023-07-28 | 深圳市安普达网络科技有限公司 | 一种光纤接头 |
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CN112068257A (zh) * | 2020-08-27 | 2020-12-11 | 华为技术有限公司 | 光纤连接器插头、光纤适配器、连接器组件及通信设备 |
CN112068256B (zh) * | 2020-08-27 | 2022-02-11 | 华为技术有限公司 | 光纤连接器插头、光纤适配器、连接器组件及通信设备 |
CN115437078B (zh) * | 2022-09-01 | 2023-08-11 | 烽火通信科技股份有限公司 | 一种光纤连接器插头、适配器及连接器组件 |
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CN116500729B (zh) * | 2023-03-16 | 2023-12-26 | 深圳市安普达网络科技有限公司 | 一种光纤接头 |
Also Published As
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US20230221496A1 (en) | 2023-07-13 |
MX2023002355A (es) | 2023-05-19 |
KR20230056731A (ko) | 2023-04-27 |
CA3193295A1 (en) | 2022-03-03 |
CN220894583U (zh) | 2024-05-03 |
CN112068256B (zh) | 2022-02-11 |
CO2023003344A2 (es) | 2023-04-17 |
EP4191297A1 (en) | 2023-06-07 |
AR123365A1 (es) | 2022-11-23 |
CN114488416A (zh) | 2022-05-13 |
CL2023000567A1 (es) | 2023-08-04 |
JP2023538689A (ja) | 2023-09-08 |
CN112068256A (zh) | 2020-12-11 |
EP4191297A4 (en) | 2023-12-27 |
ZA202302901B (en) | 2024-04-24 |
PE20231496A1 (es) | 2023-09-25 |
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