WO2016194479A1 - Dispositif de capture d'images - Google Patents

Dispositif de capture d'images Download PDF

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Publication number
WO2016194479A1
WO2016194479A1 PCT/JP2016/061579 JP2016061579W WO2016194479A1 WO 2016194479 A1 WO2016194479 A1 WO 2016194479A1 JP 2016061579 W JP2016061579 W JP 2016061579W WO 2016194479 A1 WO2016194479 A1 WO 2016194479A1
Authority
WO
WIPO (PCT)
Prior art keywords
element block
heat
main body
heat radiating
imaging device
Prior art date
Application number
PCT/JP2016/061579
Other languages
English (en)
Japanese (ja)
Inventor
恭男 湯山
紀明 高木
曜介 志水
拓也 本石
鈴木 匠
良憲 山田
Original Assignee
ソニー株式会社
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by ソニー株式会社 filed Critical ソニー株式会社
Publication of WO2016194479A1 publication Critical patent/WO2016194479A1/fr

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Classifications

    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03BAPPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
    • G03B17/00Details of cameras or camera bodies; Accessories therefor
    • G03B17/02Bodies
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03BAPPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
    • G03B17/00Details of cameras or camera bodies; Accessories therefor
    • G03B17/02Bodies
    • G03B17/12Bodies with means for supporting objectives, supplementary lenses, filters, masks, or turrets
    • G03B17/14Bodies with means for supporting objectives, supplementary lenses, filters, masks, or turrets interchangeably
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03BAPPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
    • G03B17/00Details of cameras or camera bodies; Accessories therefor
    • G03B17/55Details of cameras or camera bodies; Accessories therefor with provision for heating or cooling, e.g. in aircraft

Definitions

  • This technology relates to the technical field of an image pickup apparatus having a function of releasing heat generated when an image pickup element is driven from a heat radiating portion.
  • Various image pickup apparatuses such as a video camera and a still camera have a predetermined operation unit, for example, an apparatus main body on which a shutter button, a zoom knob, and the like are arranged.
  • an optical image of a subject is taken into the image pickup device via an image pickup optical system such as a lens, and the picked-up optical image is photoelectrically converted by the image pickup device to generate an image or video. Is generated.
  • the image sensor is disposed on the substrate, and heat is generated from the image sensor and the substrate when the image sensor is driven.
  • the image pickup apparatus is provided with a heat radiating unit for releasing the generated heat. There is one that suppresses the temperature rise of the element (for example, see Patent Document 1).
  • a lens unit (interchangeable lens) is provided with a heat transfer plate that is in contact with the back surface of the substrate and a heat transfer plate cover that covers the heat transfer plate.
  • the main body is provided with a heat sink that functions as a heat radiating portion and a heat sink cover that covers the heat sink.
  • the heat transfer plate is provided with a convex portion, and insertion holes are formed in the heat transfer cover and the heat sink, respectively, so that the heat transfer cover can be moved in the optical axis direction.
  • the entire heat transfer plate including the convex portions is covered with the heat transfer plate cover and the heat sink is covered with the heat sink cover.
  • the heat transfer plate cover When the lens unit is attached to the camera body, the heat transfer plate cover is moved in a direction approaching the heat transfer plate, and the convex portion of the heat transfer plate is inserted into the insertion hole of the heat transfer plate cover and the insertion hole of the heat sink cover. The tip surface of the part is in contact with the heat sink. Therefore, the heat generated when the image pickup element is driven is transmitted from the convex portion of the heat transfer plate to the heat sink, and is released from the heat sink to the inside of the apparatus main body.
  • the heat transfer plate cover is moved away from the heat transfer plate, the convex portions of the heat transfer plate are taken out from the respective insertion holes, and the entire heat transfer plate including the convex portions is transferred. Covered with hot plate cover.
  • the convex portion of the heat transfer plate is brought into contact with the heat sink in the lens unit and the camera body when the lens unit is attached to the camera body.
  • the entire heat transfer plate including the convex portions is covered with the heat transfer plate cover and the heat sink is covered with the heat sink cover.
  • the user since the user does not touch the heat transfer plate and the heat sink regardless of whether the lens unit is attached to or detached from the camera body, the user can handle the imaging device in a safe state.
  • the imaging device of the present technology aims to overcome the above-described problems and improve the safety of the user after ensuring the simplification of the structure.
  • an imaging apparatus includes an apparatus main body in which an operation unit is disposed, and heat generated when the imaging element is driven when an end surface on a subject side at the time of photographing of the apparatus main body is a front surface.
  • a heat radiating part to be released is located behind the front surface of the apparatus main body, and a guard part that covers at least a part of the heat radiating part is provided on the apparatus main body.
  • the heat radiating part is covered by the guard part in a state where the heat radiating part is located behind the front surface of the apparatus main body.
  • an element block having the heat radiating portion and the imaging element is provided, and the element block is detachable from the apparatus main body.
  • the element block is inserted into the insertion hole and attached to or detached from the apparatus main body.
  • the element block is inserted into the insertion hole in a state where the element block is attached to the apparatus main body, and the inner peripheral surface of the guard portion and the element block It is desirable that a gap be formed between the outer peripheral surface of each other.
  • a discharge hole for discharging heat released from the heat radiating portion to the outside is formed in the apparatus main body.
  • the heat released from the heat radiating portion is discharged from the discharge hole to the outside of the apparatus main body, and heat is not easily transmitted to the apparatus main body, so that the apparatus main body does not become hot.
  • the element block is provided with a holder portion for holding the imaging element, and the outer shape is formed to be smaller as the heat radiating portion is separated from the holder portion. It is desirable.
  • the heat dissipating part is formed in an annular shape and heat dissipating fins are provided in the entire circumferential direction of the heat dissipating part.
  • a cover portion that covers the heat dissipation portion is provided outside the heat dissipation portion, and the heat dissipation portion and the cover portion are positioned in a non-contact state.
  • an imaging apparatus includes an apparatus main body in which an operation unit is disposed, and an element block including an imaging element and a heat radiating unit that releases heat generated when the imaging element is driven, A guard portion that covers at least a part of the heat radiating portion on the apparatus main body, the heat radiating portion being located on the rear side of the front surface of the apparatus main body when an end surface on the subject side during photographing of the apparatus main body is the front surface Is provided.
  • the heat radiating part is covered by the guard part in a state where the heat radiating part is located behind the front surface of the apparatus main body.
  • the element block be detachable from the apparatus main body.
  • an insertion hole through which the element block is inserted when the element block is attached or detached is formed in the guard portion.
  • the element block is inserted into the insertion hole and attached to or detached from the apparatus main body.
  • a discharge hole for discharging heat released from the heat radiating portion to the outside is formed in the apparatus main body.
  • the heat released from the heat radiating portion is discharged from the discharge hole to the outside of the apparatus main body, and heat is not easily transmitted to the apparatus main body, so that the apparatus main body does not become hot.
  • the element block is provided with a holder portion for holding the imaging element therein, and the outer shape is formed to be smaller as the heat radiating portion is separated from the holder portion. It is desirable.
  • the heat radiating portion is formed in an annular shape, and a heat radiating fin is provided in the entire circumferential direction of the heat radiating portion.
  • a cover portion for covering the heat dissipation portion is provided outside the heat dissipation portion, and the heat dissipation portion and the cover portion are positioned in a non-contact state.
  • the interchangeable lens be detachable from the element block.
  • the heat radiating part is covered with the guard part in a state of being located on the rear side of the front surface of the apparatus main body, the contact with the heat radiating part of the user's finger is prevented by the guard part, and the structure is simplified. It is possible to improve the safety of the user while ensuring the above.
  • FIG. 17 show an embodiment of an imaging apparatus of the present technology, and this figure is an exploded perspective view showing an apparatus main body, an element block, and an interchangeable lens. It is a perspective view which shows the state with which the element block was attached to the apparatus main body with an interchangeable lens. It is a perspective view which shows an apparatus main body, an element block, and an interchangeable lens. It is a rear view of an apparatus main body. It is a side view which shows the state in which the element block was attached to the apparatus main body. It is a front view which shows the state in which the element block was attached to the apparatus main body. It is a side view of an element block. It is a perspective view of an element block.
  • FIG. 11 to 14 show a modification of the element block, and this figure is a perspective view showing a first modification. It is a perspective view which shows the 2nd modification. It is a perspective view which shows a 3rd modification. It is a perspective view which shows the 4th modification. It is a perspective view which shows the 5th modification. It is a disassembled perspective view which shows the 1st structural example of an imaging device. It is a side view which shows the 2nd structural example of an imaging device. It is a block diagram.
  • the imaging device of the present technology is applied to a still camera.
  • the lens group shown below may include one or a plurality of lenses and other optical elements such as a diaphragm and an iris in addition to the lens group including one or a plurality of lenses.
  • the imaging device 1 is composed of a device body 2 and an element block 3 (see FIGS. 1 to 3).
  • the imaging device 1 may be configured to include the interchangeable lens 4 in addition to the device body 2 and the element block 3.
  • the interchangeable lens 4 may be detachable from the element block 3.
  • the interchangeable lens 4 attachable to and detachable from the element block 3
  • a desired type of interchangeable lens 4 can be attached to and detached from the element block 3 in accordance with the photographing mode such as the type of subject, the position of the subject and the surrounding environment. This makes it possible to improve usability and improve image quality.
  • the apparatus main body 2 includes a housing 5 and various operation units 6, 6,.
  • the housing 5 has a body portion 7 formed in a horizontally long shape, a flash mounting portion 8 provided on the upper side of the body portion 7, and a guard portion 9 provided on the front side of the body portion 7.
  • the main body portion 7 includes a base portion 10 formed in a horizontally long flat and substantially rectangular shape, and a hold portion 11 protruding forward from the right end portion of the base portion 10.
  • An attachment portion 10 a for attaching the element block 3 is provided at a position closer to the left side on the front side of the base portion 10.
  • the attachment portion 10a has a circular outer shape, and the element block 3 is attached to the attachment portion 10a by, for example, bayonet coupling.
  • a display 12 is disposed on the rear surface of the base portion 10 at a position excluding a part (see FIG. 4).
  • An openable / closable cover 13 is disposed on one side surface of the base portion 10 (see FIG. 5). Inside the cover 13, various parts such as an earphone jack and connection terminals (not shown) are provided.
  • the hold portion 11 is a portion that is held by the user during photographing, and has an outer surface that extends from the front portion to the left and right sides (see FIGS. 1 to 3). Since the outer surface extending from the front part of the hold unit 11 to both the left and right side surfaces is formed in a curved shape, the user can hold the hold unit 11 without a sense of incongruity at the time of photographing, and is stable due to good gripping properties. Can be ensured.
  • the flash mounting portion 8 is provided with a front end portion and a rear end portion protruding forward and rearward from the base portion 10, respectively.
  • a light emitter flash unit (not shown) can be attached to and detached from the flash mounting portion 8.
  • a finder window 14 is disposed on the rear surface of the flash mounting portion 8 (see FIG. 4).
  • the guard portion 9 includes a substantially annular annular portion 15 and a connecting portion 16 protruding rearward from the lower end portion of the annular portion 15, and the upper end portion of the annular portion 15 is
  • the flash mounting portion 8 is coupled to the front end portion, and the rear end portion of the coupling portion 16 is coupled to the lower end portion of the base portion 10.
  • the space inside the annular portion 15 is formed as a circular insertion hole 15a, and the center of the insertion hole 15a coincides with the center of the mounting portion 10a in the front-rear direction (see FIG. 6).
  • the inner diameter of the annular portion 15 is made slightly larger than the outer diameter of the mounting portion 10a. Spaces penetrating in the left-right direction are formed between the left and right side portions of the annular portion 15 and the base portion 10, and these spaces serve as discharge holes 15b and 15b (see FIGS. 1 to 3).
  • the operation units 6, 6,... For example, a power button, a shutter button, a zoom knob, a mode selection button, a mode switching button, and the like are provided.
  • the operation units 6, 6,... are mainly provided on the upper surface and the rear surface of the main body unit 7 (see FIGS. 1 to 4).
  • the element block 3 includes a holder part 17, an attaching / detaching part 18, an imaging unit 19, and a heat radiating part 20 (see FIGS. 1, 7, and 8).
  • the holder portion 17 has a circular outer shape and has an arrangement recess 17a that opens forward.
  • a mount portion 17 b to which the interchangeable lens 4 is attached is provided at the front end portion of the holder portion 17.
  • a release knob 21 is disposed on the holder portion 17.
  • the detachable portion 18 protrudes rearward from the portion excluding the outer peripheral portion of the holder portion 17 and is formed in a circular shape whose outer shape is slightly smaller than the diameter of the holder portion 17.
  • the imaging unit 19 includes an imaging element 22 such as a CCD (Charge Coupled Device) or CMOS (Complementary Metal-Oxide Semiconductor) and a substrate 23 for driving the imaging element 22.
  • the imaging element 22 is disposed on the front surface of the substrate 23. Has been.
  • the imaging unit 19 is inserted and arranged in the arrangement recess 17 a of the holder part 17 and is held by the holder part 17.
  • the heat dissipating part 20 is arranged on the outer peripheral side of the attaching / detaching part 18 and is formed in an annular shape. Heat generated when the image sensor 22 is driven is transmitted to the heat radiating unit 20.
  • the heat radiating portion 20 includes an annular front coupling portion 20a, an annular rear coupling portion 20b, and a plurality of radiating fins 20c, 20c provided between the front coupling portion 20a and the rear coupling portion 20b. It is desirable that and are integrally formed and made of a material having higher heat dissipation than the holder portion 17.
  • the front coupling part 20 a is located immediately behind the holder part 17 and has an outer diameter substantially the same as the outer diameter of the holder part 17.
  • the diameter of the rear coupling part 20b is smaller than the diameter of the front coupling part 20a.
  • the radiation fins 20c, 20c,... Are positioned at equal intervals in the circumferential direction.
  • the heat radiating portion 20 is formed in such a shape that the outer diameter becomes smaller as it is separated from the holder portion 17 because the diameter of the rear coupling portion 20b is smaller than that of the front coupling portion 20a.
  • the element block 3 is detachably attached to the apparatus main body 2 (see FIGS. 1 to 3).
  • the element block 3 has the detachable portion 18 attached to the attachment portion 10a of the apparatus main body 2 by, for example, bayonet coupling.
  • the element block 3 can be attached to the attachment part 10a by inserting the element block 3 into the insertion hole 15a of the guard part 9, pressing the attachment / detachment part 18 against the attachment part 10a, and rotating the element block 3 to one side in the circumferential direction.
  • the element block 3 is locked to the apparatus main body 2 by a lock mechanism (not shown).
  • the heat radiating portion 20 is located behind the front surface 15 c of the annular portion 15 in the guard portion 9, and the discharge holes 15 b and 15 b are located on the left and right sides of the heat radiating portion 20, respectively. (See FIG. 5).
  • the element block 3 is attached to the apparatus main body 2
  • at least a part of the holder portion 17 of the element block 3 protrudes forward from the guard portion 9.
  • a gap 24 is formed between the outer peripheral surface of the element block 3 and the inner peripheral surface of the annular portion 15 in the guard portion 9 (see FIG. 6).
  • the element block 3 is detached from the apparatus main body 2 by operating a release button (not shown) provided on the apparatus main body 2 to release the lock, rotating the element block 3 to the other side in the circumferential direction, and taking it out from the insertion hole 15a. Can be performed.
  • the user rotates the element block 3 while holding the holder portion 17 protruding forward from the guard portion 9. Therefore, since the user rotates the element block 3 by grasping a part other than the heat radiating part 20, the finger does not come into contact with the heat radiating part 20 that is likely to be hot, and the element block 3 is removed from the apparatus main body 2 in a safe state. be able to.
  • the element block 3 can be attached to and detached from the apparatus main body 2, a desired type of element block 3 can be attached to and detached from the apparatus main body 2 in accordance with the photographing mode such as the type of subject and the surrounding environment. It is possible to improve the usability and the image quality. In particular, by preparing an element block 3 having an image sensor 22 with a large number of pixels or a sensor element 22 having a high sensitivity, it is possible to generate a high-quality image according to the type of subject. Become.
  • the element block 3 may be formed integrally with the apparatus main body 2 as a part of the apparatus main body 2.
  • the holder unit 17, the imaging unit 19, and the heat radiating unit 20, which are each part of the element block 3, are provided. A part of the configuration of the main body 2 is used.
  • the interchangeable lens 4 has a cylindrical outer casing 25 and a lens group 26 arranged inside the outer casing 25 (see FIGS. 1 to 3).
  • the interchangeable lens 4 is provided with a zoom ring 27 and a focus ring 28 that are rotatably supported by the outer casing 25. Manual zooming is performed by rotating the zoom ring 27, and manual focusing is performed by rotating the focus ring 28.
  • a lens mount 29 that is bayonet-coupled to the mount portion 17 b of the element block 3 is provided.
  • the attachment of the interchangeable lens 4 to the mount portion 17b in the element block 3 can be performed by pressing the lens mount 29 against the mount portion 17b and rotating the interchangeable lens 4 to one side in the circumferential direction.
  • the interchangeable lens 4 is locked to the element block 3 by a lock unit (not shown).
  • the release knob 21 provided in the element block 3 is operated to release the lock, and the interchangeable lens 4 is rotated to the other side in the circumferential direction. This can be done by pulling away from the element block 3.
  • a subject can be captured when the still image capturing mode or the moving image capturing mode is set.
  • an image of the subject captured by the lens group 26 of the interchangeable lens 4 is incident on the image sensor 22 of the element block 3 and is subjected to photoelectric conversion (analog / digital conversion) by the image sensor 22 to be a predetermined processing unit of the apparatus main body 2.
  • photoelectric conversion analog / digital conversion
  • the image sensor 22 is driven during photographing. When the image sensor 22 is driven, heat is generated in the image sensor 22 and the substrate 23, and the generated heat is transmitted to the heat radiating unit 20 and released from the heat radiating unit 20.
  • the element block 3 has the heat radiating portion 20 formed in an annular shape, and the heat radiating fins 20c, 20c,...
  • the heat is released to the outer peripheral side from each of the two to ensure high heat dissipation and to ensure a good driving state of the image sensor 22.
  • the heat generated when the image pickup device 22 is driven is also released from the front coupling portion 20a and the rear coupling portion 20b in addition to the radiation fins 20c, 20c,.
  • the heat released from the heat radiating unit 20 is mainly discharged from the discharge holes 15b and 15b formed in the apparatus main body 2 to the outside of the apparatus main body 2.
  • the apparatus main body 2 is formed with the discharge holes 15b and 15b for discharging the heat released from the heat radiating section 20, the heat released from the heat radiating section 20 is discharged from the discharge holes 15b and 15b to the apparatus main body 2. It is reliably discharged outside. Therefore, heat is not easily transmitted to the apparatus main body 2, and the apparatus main body 2 does not reach a high temperature, and the temperature rise of the image pickup element 22 and the apparatus main body 2 is suppressed to ensure a good operation state of the image pickup element 22 and the apparatus main body 2. can do.
  • the apparatus main body 2 is formed with discharge holes 15b and 15b positioned on the opposite side across the element block 3, the heat released from the heat radiating portion 20 from both sides of the element block 3 It is discharged to the outside, and the temperature rises of the image sensor 22 and the apparatus main body 2 are further suppressed, and a better operating state of the image sensor 22 and the apparatus main body 2 can be ensured.
  • the discharge holes 15b and 15b located on the left and right sides of the heat radiating part 20 are formed in the apparatus main body 2 .
  • the discharge holes 15b are formed at arbitrary positions around the heat radiating part 20. For example, it may be located above or below the heat dissipating part 20.
  • the heat dissipating part 20 that releases heat generated when the image sensor 22 is driven is located behind the front surface 15 c of the apparatus main body 2, and the heat dissipating part 20 is disposed on the apparatus main body 2.
  • a guard portion 9 is provided to cover at least a part thereof.
  • the guard portion 9 having a simple structure prevents the finger from coming into contact with the heat radiating portion 20 that may become high in temperature, the user can handle the imaging device 1 in a safe state.
  • the user's safety can be improved while ensuring simplification.
  • the guard portion 9 is formed with an insertion hole 15a through which the element block 3 is inserted when the element block 3 is attached to and detached from the apparatus main body 2, the element block 3 is inserted into the insertion hole 15a and is attached to and detached from the apparatus main body 2. Is done. Accordingly, the guard portion 9 functions as a protection portion that protects the element block 3 and also functions as a guide portion that guides the element block 3, and functionality can be improved with a simple configuration.
  • the element block 3 is provided with a holder portion 17 for holding the image pickup device 22 therein, and the outer shape becomes smaller as the heat radiating portion 20 is separated from the holder portion 17.
  • the cover part 30 is positioned outside the heat dissipation part 20X in a non-contact state with the heat dissipation part 20X, so that heat released from the heat dissipation part 20X is not easily transmitted to the cover part 30, and It is difficult to feel the heat when touching, and it is possible to ensure good heat dissipation while ensuring the safety of the user during handling of the imaging device 1 such as the attaching / detaching operation of the element block 3.
  • the heat dissipating part 20 ⁇ / b> A includes an annular front coupling part 20 a, an annular rear coupling part 20 b, and between the front coupling part 20 a and the rear coupling part 20 b.
  • the heat dissipating fins 20d, 20d,... are inclined so as to displace to one side in the circumferential direction as they go backward. Yes.
  • the radiating fins 20d, 20d,... are inclined so as to be displaced in the circumferential direction, thereby increasing the length of the radiating fins 20d, 20d,.
  • it is possible to increase the heat dissipation area it is possible to improve the heat dissipation when the image sensor 22 is driven.
  • the heat dissipating part 20B includes annular heat dissipating fins 20e, 20e,... And heat dissipating fins 20e, 20e,. It consists of connecting parts 20f, 20f,... To be connected, and the diameter of the heat radiation fins 20e, 20e,.
  • annular radiating fins 20e, 20e,... are provided in this way, it is possible to increase the heat radiating area while ensuring a good air flow state.
  • the heat dissipation in can be improved.
  • the heat dissipating part 20C according to the third modification has an annular and plate-shaped heat dissipating fin 20g having a wide width in the front-rear direction. Between the heat radiating fins 20g, gaps 31 and 31 are formed between the holder portion 17 and the detachable portion 18, respectively, in which air flows.
  • annular heat dissipating fins 20g having a wide width in the front-rear direction in this way, it is possible to ensure good heat dissipation during driving of the image sensor 22 with a simple structure.
  • a plurality of annular radiating fins separated in the front-rear direction can be used instead of the single radiating fin 20g having a wide width in the front-rear direction. It is.
  • the heat dissipating part 20D includes an annular front coupling part 20a, an annular rear coupling part 20b, and between the front coupling part 20a and the rear coupling part 20b. And a grid-like heat radiation fin 20h provided integrally with each other.
  • the heat dissipating part 20E includes an annular front coupling part 20a, an annular rear coupling part 20b, and between the front coupling part 20a and the rear coupling part 20b. And a net-like heat dissipating fin 20i provided integrally with each other.
  • all the above-mentioned heat radiating parts 20, 20X, 20A, 20B, 20C, 20D, 20E are located on the outer peripheral side of the detachable part 18, and the heat radiating parts 20, 20X, 20A, 20B, 20C, 20D, 20E It is desirable that a space exists between the back surface and the surface of the detachable portion 18.
  • the back surface of 20E also functions as a heat radiating surface, and the air fluidity is increased, so that the heat radiating property can be further improved.
  • An image pickup apparatus 1A which is a first configuration example, includes an apparatus body 2A and an element block 3 (see FIG. 15).
  • the imaging device 1A may be configured to include the interchangeable lens 4 in addition to the device main body 2A and the element block 3.
  • the interchangeable lens 4 may be detachable from the element block 3.
  • the element block 3 may be integrally formed with the apparatus main body 2A.
  • the holder unit 17, the imaging unit 19, and the heat radiating unit 20 which are each part of the element block 3 are included in the apparatus main body 2A. Part of the configuration.
  • the apparatus main body 2A has a housing 5A and various operation units 6, 6,... Arranged in each part of the housing 5A.
  • the housing 5A has an annular guard portion 9A and a hold portion 11A continuous to the right end of the guard portion 9A.
  • the space inside the guard portion 9A is formed as a circular insertion hole 15a.
  • a mounting portion 10a is provided in the housing 5A at a position directly behind the insertion hole 15a.
  • a space penetrating in the vertical direction is formed on the rear side of the insertion hole 15a, and these spaces serve as discharge holes 15b and 15b.
  • the heat dissipating part 20 is located behind the front surface 15c of the guard part 9A, and the discharge holes 15b and 15b are located above and below the heat dissipating part 20, respectively.
  • the element block 3 is attached to the apparatus main body 2A, at least a part of the holder portion 17 of the element block 3 protrudes forward from the guard portion 9A.
  • the heat generated when the imaging element 22 is driven and released from the heat radiating unit 20 is mainly from the discharge holes 15b and 15b formed in the apparatus body 2A. It is discharged outside.
  • the apparatus body 2A is formed with the discharge holes 15b and 15b for discharging the heat released from the heat radiating section 20, the heat released from the heat radiating section 20 is transferred from the discharge holes 15b and 15b to the apparatus main body 2A. It is reliably discharged outside. Therefore, heat is not easily transmitted to the apparatus main body 2A, and the apparatus main body 2A does not reach a high temperature, and the temperature rise of the image pickup element 22 and the apparatus main body 2A is suppressed, and a good operating state of the image pickup element 22 and the apparatus main body 2A is ensured. can do.
  • the apparatus main body 2A is formed with discharge holes 15b and 15b positioned on the opposite side across the element block 3, the heat released from the heat radiating portion 20 is transmitted from both sides of the element block 3 to the apparatus main body 2A. It is discharged to the outside, and the temperature rise of the image sensor 22 and the apparatus main body 2A is further suppressed, and a more favorable operation state of the image sensor 22 and the apparatus main body 2A can be secured.
  • the one discharge hole 15b is located above the heat radiating part 20, so that the heat released from the heat radiating part 20 is reduced. Good discharge performance can be ensured.
  • the imaging apparatus 1B as the second configuration example is configured by the apparatus main body 2B and the element block 3 (see FIG. 16).
  • the imaging apparatus 1B may include an interchangeable lens 4 in addition to the apparatus main body 2B and the element block 3.
  • the interchangeable lens 4 may be detachable from the element block 3.
  • the element block 3 may be integrally formed with the apparatus main body 2B.
  • the holder unit 17, the imaging unit 19, and the heat radiating unit 20 which are each part of the element block 3 are included in the apparatus main body 2B. Part of the configuration.
  • the apparatus main body 2B has a housing 5B and various operation units 6, 6,... Arranged in each part of the housing 5B.
  • the housing 5B has a guard portion 9B and a hold portion 11B provided in a state protruding from the guard portion 9B.
  • the housing 5B is formed with a circular insertion hole (not shown) through which the element block 3 is inserted, and discharge holes 15b and 15b for discharging heat released from the heat radiation portion 20 of the element block 3B.
  • the discharge holes 15b and 15b are penetrated to the left and right and are spaced apart to the left and right.
  • the discharge hole 15b should just be formed in the arbitrary positions around the thermal radiation part 20, for example, may be located in at least one of the upper direction of the thermal radiation part 20, or the downward direction.
  • the adapter 32 can be attached to and detached from the apparatus main body 2B.
  • the adapter 32 is provided with various connection terminals 33, 33,. By connecting a predetermined connection cord to each of the connection terminals 33, 33,..., Connection between the imaging device 1B and an external device such as a display device is possible via the adapter 32.
  • the viewfinder 34 can be attached to and detached from the adapter 32.
  • the viewfinder 34 allows the user to reliably see the subject at the time of shooting.
  • the imaging device 1B having such a viewfinder 34 is particularly preferably used as a video camera for moving image shooting.
  • the adapter 32 is not necessarily attached and used at the time of shooting or the like.
  • the viewfinder 34 may be detachable from the apparatus main body 2B.
  • the heat radiating portion 20 is located behind the front surface 15c of the guard portion 9B, and the discharge holes 15b and 15b are located on the left and right sides of the heat radiating portion 20, respectively.
  • the element block 3 is attached to the apparatus main body 2B, at least a part of the holder portion 17 of the element block 3 protrudes forward from the guard portion 9B.
  • heat generated when the imaging element 22 is driven and released from the heat radiating unit 20 is mainly from the discharge holes 15b and 15b formed in the apparatus body 2B. It is discharged outside.
  • the apparatus main body 2B is formed with the discharge holes 15b and 15b for discharging the heat released from the heat radiating portion 20, the heat released from the heat radiating section 20 is discharged from the discharge holes 15b and 15b to the apparatus main body 2B. It is reliably discharged outside. Therefore, heat is not easily transmitted to the apparatus main body 2B, and the apparatus main body 2B does not reach a high temperature, and the temperature rises of the image pickup element 22 and the apparatus main body 2B are suppressed, and a favorable operating state of the image pickup element 22 and the apparatus main body 2B is ensured. can do.
  • the apparatus main body 2B is formed with discharge holes 15b and 15b positioned on the opposite side across the element block 3, the heat released from the heat radiating portion 20 is generated from both sides of the element block 3 on the apparatus main body 2B. It is discharged to the outside, and the temperature rises of the image sensor 22 and the apparatus main body 2B are further suppressed, and a better operating state of the image sensor 22 and the apparatus main body 2B can be secured.
  • FIG. 17 shows a block diagram of an embodiment of the imaging device of the present technology.
  • the imaging device 1 has, for example, a device main body 2 and an element block 3, and the interchangeable lens 4 is attached to the element block 3 for use.
  • the apparatus main body 2 includes a camera signal processing unit 51 that performs predetermined signal processing and an image processing unit 52 that performs recording and reproduction processing of image signals.
  • the apparatus main body 2 includes a display unit 53 (display 12) that displays captured images and the like, an R / W (reader / writer) 54 that writes and reads image signals to and from the memory 60, and an imaging apparatus.
  • a central processing unit (CPU) 55 that controls the entire system 1, an operation unit 56 (operation unit 6) such as various switches that are operated by a user, and a lens group 26 provided in the interchangeable lens 4.
  • a lens drive control unit 57 that controls driving.
  • the camera signal processing unit 51 performs various signal processing such as noise removal, image quality correction, and conversion to luminance / color difference signals on the output signal from the image sensor 22.
  • the image processing unit 52 performs compression encoding / decompression decoding processing of an image signal based on a predetermined image data format, conversion processing of data specifications such as resolution, and the like.
  • the display unit 53 has a function of displaying various data such as an operation state of the user operation unit 56 and a photographed image.
  • the R / W 54 writes the image data encoded by the image processing unit 52 into the memory 60 and reads out the image data recorded in the memory 60.
  • the CPU 55 functions as a control processing unit that controls each unit of the imaging apparatus 1 and controls each unit based on an instruction input signal or the like from the operation unit 56.
  • the operation unit 56 outputs an instruction input signal corresponding to the operation by the user to the CPU 55.
  • the lens drive control unit 57 controls a drive source that drives each lens of the lens group 26 based on a control signal from the CPU 55.
  • the memory 60 is a semiconductor memory that can be attached to and detached from a slot connected to the R / W 54, for example.
  • the captured image signal is output to the display unit 53 via the camera signal processing unit 51 and displayed as a camera-through image under the control of the CPU 55.
  • the CPU 55 outputs a control signal to the lens drive control unit 57, and a predetermined lens group 26 is controlled based on the control of the lens drive control unit 57. The lens is moved.
  • the photographed image signal is output from the camera signal processing unit 51 to the image processing unit 52, subjected to compression coding processing, and converted into digital data of a predetermined data format. Converted. The converted data is output to the R / W 54 and written to the memory 60.
  • Focusing is performed when the lens drive control unit 57 moves a predetermined lens of the lens group 26 based on a control signal from the CPU 55.
  • predetermined image data is read from the memory 60 by the R / W 54 in accordance with an operation on the operation unit 56, and decompression decoding processing is performed by the image processing unit 52. After being performed, the reproduced image signal is output to the display unit 53 to display the reproduced image.
  • the present technology may be configured as follows.
  • a plurality of the discharge holes are formed in the apparatus body, The imaging device according to (5), wherein the discharge hole is positioned on the opposite side at least across the element block.
  • the element block is provided with a holder portion for holding the image sensor inside,
  • the heat radiating part is formed in an annular shape,
  • a cover for covering the heat dissipation part is provided outside the heat dissipation part,
  • a plurality of the discharge holes are formed in the apparatus body, The imaging device according to (15), wherein the discharge hole is positioned on the opposite side at least with the element block interposed therebetween.
  • the element block is provided with a holder portion for holding the image sensor inside,
  • the heat radiating part is formed in an annular shape,
  • a cover for covering the heat dissipation part is provided outside the heat dissipation part,
  • the imaging device according to any one of (11) to (18), wherein the heat dissipating part and the covering part are positioned in a non-contact state.
  • An element block comprising: an imaging element; a holder part that holds the imaging element; and a heat dissipation part that releases heat generated when the imaging element is driven.
  • An element block comprising: an imaging element; a holder part that holds the imaging element; and a heat dissipation part that releases heat generated when the imaging element is driven.
  • SYMBOLS 1 Imaging device, 2 ... Apparatus main body, 3 ... Element block, 4 ... Interchangeable lens, 6 ... Operation part, 9 ... Guard part, 15a ... Insertion hole, 15b ... Discharge hole, 15c ... Front surface, 17 ... Holder part, 19 DESCRIPTION OF SYMBOLS ... Imaging unit, 20 ... Radiation part, 20c ... Radiation fin, 22 ... Imaging element, 24 ... Gap, 20X ... Radiation part, 30 ... Cover part, 20A ... Radiation part, 20d ... Radiation fin, 20B ... Radiation part, 20e ... Radiation fin, 20C ... radiation part, 20g ... radiation fin, 20D ...

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  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Engineering & Computer Science (AREA)
  • Aviation & Aerospace Engineering (AREA)
  • Studio Devices (AREA)
  • Camera Bodies And Camera Details Or Accessories (AREA)
  • Structure And Mechanism Of Cameras (AREA)
  • Cameras Adapted For Combination With Other Photographic Or Optical Apparatuses (AREA)

Abstract

La présente invention assure une structure simplifiée et améliore la sécurité de l'utilisateur. L'invention concerne un corps de dispositif sur lequel est disposée une unité opérationnelle. Dans un cas où la surface d'extrémité du côté du sujet du corps de dispositif est sa surface avant lorsque le corps de dispositif procède à la capture d'images, des parties de dissipation thermique qui dissipent la chaleur générée lorsque le dispositif de capture d'images est piloté sont positionnées du côté arrière du corps de dispositif depuis sa surface avant. Le corps de dispositif comporte une partie de garde qui recouvre au moins certaines des parties de dissipation thermique. En raison de cette configuration, parce que les parties de dissipation thermique sont recouvertes par la partie de garde dans un état où les parties de dissipation thermique sont positionnées du côté arrière du corps de dispositif depuis sa surface avant, la partie de garde empêche que les doigts de l'utilisateur touchent les parties de dissipation thermique, et il est possible d'assurer une structure simplifiée et d'améliorer la sécurité de l'utilisateur.
PCT/JP2016/061579 2015-05-29 2016-04-08 Dispositif de capture d'images WO2016194479A1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
JP2015109606A JP2016225780A (ja) 2015-05-29 2015-05-29 撮像装置
JP2015-109606 2015-05-29

Publications (1)

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WO2016194479A1 true WO2016194479A1 (fr) 2016-12-08

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Cited By (1)

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Publication number Priority date Publication date Assignee Title
WO2019171722A1 (fr) * 2018-03-06 2019-09-12 ソニー株式会社 Dispositif d'imagerie et unité d'imagerie

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP7467068B2 (ja) * 2019-10-23 2024-04-15 キヤノン株式会社 撮像装置

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2006121646A (ja) * 2004-09-27 2006-05-11 Fuji Photo Film Co Ltd カメラヘッド
JP2007235725A (ja) * 2006-03-02 2007-09-13 Fujifilm Corp 撮影システム
JP2009188720A (ja) * 2008-02-06 2009-08-20 Panasonic Corp 固体撮像装置およびその製造方法
JP2010093797A (ja) * 2008-09-11 2010-04-22 Panasonic Corp カメラ本体およびそれを備えた撮像装置

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2006121646A (ja) * 2004-09-27 2006-05-11 Fuji Photo Film Co Ltd カメラヘッド
JP2007235725A (ja) * 2006-03-02 2007-09-13 Fujifilm Corp 撮影システム
JP2009188720A (ja) * 2008-02-06 2009-08-20 Panasonic Corp 固体撮像装置およびその製造方法
JP2010093797A (ja) * 2008-09-11 2010-04-22 Panasonic Corp カメラ本体およびそれを備えた撮像装置

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2019171722A1 (fr) * 2018-03-06 2019-09-12 ソニー株式会社 Dispositif d'imagerie et unité d'imagerie
JPWO2019171722A1 (ja) * 2018-03-06 2021-04-01 ソニー株式会社 撮像装置及び撮像ユニット
JP7211411B2 (ja) 2018-03-06 2023-01-24 ソニーグループ株式会社 撮像装置及び撮像ユニット

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