GB2577345A - Female hydraulic coupling, male hydraulic coupling and combination thereof - Google Patents

Female hydraulic coupling, male hydraulic coupling and combination thereof Download PDF

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Publication number
GB2577345A
GB2577345A GB1817964.8A GB201817964A GB2577345A GB 2577345 A GB2577345 A GB 2577345A GB 201817964 A GB201817964 A GB 201817964A GB 2577345 A GB2577345 A GB 2577345A
Authority
GB
United Kingdom
Prior art keywords
coupling
male
seal
hydraulic coupling
female
Prior art date
Legal status (The legal status 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 status listed.)
Withdrawn
Application number
GB1817964.8A
Other versions
GB201817964D0 (en
Inventor
Shende Amit
Surve Vijay
Choudhari Vikas
Lafond Sébastien
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Eaton Intelligent Power Ltd
Original Assignee
Eaton Intelligent Power Ltd
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 Eaton Intelligent Power Ltd filed Critical Eaton Intelligent Power Ltd
Publication of GB201817964D0 publication Critical patent/GB201817964D0/en
Publication of GB2577345A publication Critical patent/GB2577345A/en
Withdrawn legal-status Critical Current

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16LPIPES; JOINTS OR FITTINGS FOR PIPES; SUPPORTS FOR PIPES, CABLES OR PROTECTIVE TUBING; MEANS FOR THERMAL INSULATION IN GENERAL
    • F16L37/00Couplings of the quick-acting type
    • F16L37/28Couplings of the quick-acting type with fluid cut-off means
    • F16L37/30Couplings of the quick-acting type with fluid cut-off means with fluid cut-off means in each of two pipe-end fittings
    • F16L37/32Couplings of the quick-acting type with fluid cut-off means with fluid cut-off means in each of two pipe-end fittings at least one of two lift valves being opened automatically when the coupling is applied
    • F16L37/34Couplings of the quick-acting type with fluid cut-off means with fluid cut-off means in each of two pipe-end fittings at least one of two lift valves being opened automatically when the coupling is applied at least one of the lift valves being of the sleeve type, i.e. a sleeve is telescoped over an inner cylindrical wall
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16LPIPES; JOINTS OR FITTINGS FOR PIPES; SUPPORTS FOR PIPES, CABLES OR PROTECTIVE TUBING; MEANS FOR THERMAL INSULATION IN GENERAL
    • F16L37/00Couplings of the quick-acting type
    • F16L37/28Couplings of the quick-acting type with fluid cut-off means
    • F16L37/30Couplings of the quick-acting type with fluid cut-off means with fluid cut-off means in each of two pipe-end fittings
    • F16L37/32Couplings of the quick-acting type with fluid cut-off means with fluid cut-off means in each of two pipe-end fittings at least one of two lift valves being opened automatically when the coupling is applied
    • F16L37/36Couplings of the quick-acting type with fluid cut-off means with fluid cut-off means in each of two pipe-end fittings at least one of two lift valves being opened automatically when the coupling is applied with two lift valves being actuated to initiate the flow through the coupling after the two coupling parts are locked against withdrawal
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16LPIPES; JOINTS OR FITTINGS FOR PIPES; SUPPORTS FOR PIPES, CABLES OR PROTECTIVE TUBING; MEANS FOR THERMAL INSULATION IN GENERAL
    • F16L37/00Couplings of the quick-acting type
    • F16L37/22Couplings of the quick-acting type in which the connection is maintained by means of balls, rollers or helical springs under radial pressure between the parts
    • F16L37/23Couplings of the quick-acting type in which the connection is maintained by means of balls, rollers or helical springs under radial pressure between the parts by means of balls
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16LPIPES; JOINTS OR FITTINGS FOR PIPES; SUPPORTS FOR PIPES, CABLES OR PROTECTIVE TUBING; MEANS FOR THERMAL INSULATION IN GENERAL
    • F16L37/00Couplings of the quick-acting type
    • F16L37/28Couplings of the quick-acting type with fluid cut-off means
    • F16L37/30Couplings of the quick-acting type with fluid cut-off means with fluid cut-off means in each of two pipe-end fittings
    • F16L37/32Couplings of the quick-acting type with fluid cut-off means with fluid cut-off means in each of two pipe-end fittings at least one of two lift valves being opened automatically when the coupling is applied
    • F16L37/35Couplings of the quick-acting type with fluid cut-off means with fluid cut-off means in each of two pipe-end fittings at least one of two lift valves being opened automatically when the coupling is applied at least one of the valves having an axial bore

Landscapes

  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Quick-Acting Or Multi-Walled Pipe Joints (AREA)

Abstract

A female hydraulic coupling 1 having a movable pin 14 arranged in the elongate body (2, 3) and extending sealingly through the elongate body and between the locking sleeve 15 and the valve body 5, wherein the movable pin is moved by the locking sleeve arriving at the fourth position to move the valve body towards a position in the direction of the second position with the first seal 12 and second seal 13 on the same side of the opening 11 of the bypass channel 9 at the central portion of the valve guide to open the bypass channel. Although the bypass channel is no longer sealed when the male coupling is inserted into the female coupling and the movable pin has pushed the valve body towards a second position, the valve body will still largely block the bypass channel such that the pressure in the valve guide at the open end can only increase gradually, allowing for sufficient time to provide a reliable mechanical coupling. Embodiments relate to a male hydraulic coupling 30 and a combination of a male and female hydraulic coupling. The male coupling 30 comprises a first seal (38), second seal (39) and third seal (40).

Description

Female hydraulic coupling, male hydraulic coupling and combination thereof The invention relates to a female hydraulic coupling, such as a flat face female hydraulic coupling. Such a flat face female hydraulic coupling is for example known from PCT/EP2018/052000. This known coupling is designed to minimize the force required to couple the flat face female hydraulic coupling when under pressure. In this known female coupling a valve stem is stationary arranged, which results in a pressure drop and reduces flow through the coupling. Furthermore, the known female coupling has two telescopically sliding sleeves, which need to be properly sealed and this complicates the design of the coupling to ensure reliability.
This known flat face female hydraulic coupling is however not suited to be coupled when also the corresponding flat face male hydraulic coupling is under pressure. When the male coupling is inserted into the female coupling, the fluid passage already starts to open, before both couplings are mechanically locked to each other. So, at least part of the hydraulic system should be depressurized before a coupling could reliably take place.
It is an object of the invention to reduce or even remove the above mentioned disadvantages.
2 0 This object is achieved according to the invention with a female hydraulic coupling comprising: -an elongate body comprising a valve guide extending in axial direction, which valve guide debouches with an open end at one end of the body; - a valve body guided in the valve guide, which valve body is movable in axial direction between a first position and a second position; -spring means arranged between the valve body and the other end of the elongate body to urge the valve body towards the first position; - a bypass channel arranged in the elongate body and extending between the other end of the elongate body and a central portion of the valve guide, such that a 3 0 continuous passage is formed in the elongate body, which continuous passage extends from the open end of the valve guide to the other end of the elongate body; -a locking sleeve, such as a ball retainer, arranged around the first end of the elongate body and movable in axial direction between a third position and a fourth position, which locking sleeve comprises spring means to urge the locking sleeve towards the third position; -a first seal and a second seal arranged on the valve body to seal the valve body to the valve guide in the first position, wherein the first seal and second seal are positioned in said first position on opposite sides of the opening of the bypass channel at the central portion of the valve guide; -a movable pin arranged in the elongate body and extending sealingly through the elongate body and extending between the locking sleeve and the valve body, wherein the movable pin is moved by the locking sleeve arriving at the fourth position to move the valve body towards a position in the direction of the second position with the first seal and second seal on the same side of the opening of the bypass channel at the central portion of the valve guide to open the bypass channel With the female hydraulic coupling according to the invention, the valve body is urged towards the first position, such that the first seal and second seal close off the bypass channel. Only when a male hydraulic coupling is inserted into the female hydraulic coupling of the invention and only when the locking sleeve arrives at the fourth position, in which a full coupling of the male hydraulic coupling with the female hydraulic coupling is achieved, the movable pin will push the valve body towards the second 2 0 position such that the valve body no longer seals the bypass channel Although the bypass channel is no longer sealed, the valve body will still largely block the bypass channel such that the pressure in the valve guide at the open end can only increase gradually. This allows for sufficient time to provide a reliable mechanical coupling between the female coupling and the male coupling.
As soon as the pressure has increased to a certain threshold, the pressure will be sufficient to push the valve body against the pressure of the spring means towards the second position fully freeing the bypass channel and allowing for maximum flow through the female hydraulic coupling.
A preferred embodiment of the female hydraulic coupling according to the 3 0 invention, further comprises: -a locking body coaxially arranged around the locking sleeve and fixedly to the elongate body, wherein the locking body comprises at least one radially extending through hole housing a locking ball; and -a lock operating sleeve arranged slidably and coaxially around the locking body, wherein the lock operating sleeve has a profiled inner surface to urge the locking balls into their respective radially extending through holes.
When a male hydraulic coupling, provided with an external groove, is inserted into the female hydraulic coupling according to the invention, the locking balls will be accommodated partially in said groove upon full insertion of the coupling. The lock operating sleeve having the profiled inner surface then can slide over the through holes preventing the locking balls to be pushed back. This ensures a reliable coupling which can only be decoupled by shifting the lock operating sleeve such that the locking balls can return back into the through holes.
In a further preferred embodiment of the female hydraulic coupling according to the invention a bleed port is arranged in the elongate body extending from the valve guide to the outer surface of the elongate body and positioned near the other end of the elongate body.
Because the valve body is provided with the first and second seal, air present between the other end of the valve guide and the valve body will be compressed when the valve body is moved to the second position. With the bleed port, this compressed air can be bled to the exterior of the coupling.
2 0 By designing the dimensions of the bleed port, the speed with which the valve body is pushed towards the second position by the hydraulic pressure can be controlled.
The invention also relates to a male hydraulic coupling. Such a male hydraulic coupling is for example known from PCT/EP2018/051998. Also in this known coupling a telescopic arrangement of the valve body is provided, which requires additional attention for the seals. Furthermore, the male hydraulic coupling is already opened fully when the mechanical coupling is about to be made.
So, with said known flat face male hydraulic coupling the pressure needs to be removed from the male coupling in order to safely couple said known coupling 3 0 especially when high working pressures of 350 bar are used In line with the already stated object to reduce or even remove the disadvantages of the prior art, this object is also achieved with a male hydraulic coupling comprising: -an elongate body comprising a valve guide extending in axial direction, which valve guide debauches with an open end at one end of the body; -a valve body guided in the valve guide, which valve body is movable in 5 axial direction between a first position and a second position; -spring means arranged between the valve body and the other end of the elongate body to urge the valve body towards the first position; -a bypass channel arranged in the elongate body and extending between the other end of the elongate body and a central portion of the valve guide, such that a 10 continuous passage is formed in the elongate body, which continuous passage extends from the open end of the valve guide to the other end of the elongate body; -a first seal arranged in the valve guide between the central portion and the other end of the elongate body to seal the the valve body in the valve guide; -a second seal and a third seal arranged in the valve guide between the 15 central portion and the one end of the elongate body; wherein the elongate body has at the one end an external groove for connection with locking means of a female hydraulic coupling.
When the male hydraulic coupling is inserted into a female hydraulic coupling, such as according to the invention, the valve body is pushed towards the other 2 0 end of the elongate body. As a result, the sealing action of the second seal is transferred on to the part of the female coupling extending into the valve guide, while the bypass channel is still sealed by the first and second seal sealing onto the valve body of the male coupling.
Only when the mechanical connection between the male and female couplings is made and the pressure within the couplings is increased, the valve body of the male hydraulic coupling will be moved against the spring means towards the second position opening the bypass channeL In a preferred embodiment of the male hydraulic coupling according to the invention a bleed port is arranged in the elongate body extending from the valve guide to 3 0 the outer surface of the elongate body and positioned near the other end of the elongate body.
Similarly to the bleed port of the female hydraulic coupling, the dimensions of the bleed port of the male hydraulic coupling allow for controlling the speed with which the valve body is pushed by hydraulic pressure towards the second position.
Yet another embodiment of the male hydraulic coupling, the valve body is provided with a helical groove extending from the open end along a part of the length of the valve body and ends before the third seal with the valve body in the first position.
This helical groove provides a flow path from the male hydraulic coupling towards the female hydraulic coupling, when the male hydraulic coupling is inserted partially into the female coupling. By designing the helical groove small, the flow and pressure rise will be limited, such that an operator has sufficient time to fully couple and latch both couplings.
The invention further relates to a combination of a female hydraulic coupling according to the invention and a male hydraulic coupling according to the invention, -wherein the one end of the female elongate body extends into the open 15 end at the one end of the male elongate body and is sealed by the second seal of the male hydraulic coupling; -wherein the locking sleeve is in the fourth position in contact with the male elongate body and the female valve body is moved towards a position in the direction of the second position by the movable pin.
2 0 In a preferred embodiment of the combination according to the invention at least one locking ball is partly accommodated in the external groove of male hydraulic coupling and partly in the through hole of the locking body.
These and other features of the invention will be elucidated in conjunction with the accompanying drawings.
Figure 1 shows a cross-sectional view an embodiment of a flat face female hydraulic coupling according to the invention.
Figure 2 shows a cross-sectional view an embodiment of a flat face male hydraulic coupling according to the invention.
Figures 3 -5 show a combination of the coupling according to figures 1 3 0 and 2 in three different states.
Figure 1 shows an embodiment 1 of a flat face female hydraulic coupling according to the invention. The coupling 1 has an elongate body out of two parts 2, 3. In the elongate body 2, 3 a valve guide 4 is arranged in which a valve body 5 is guided The valve guide 4 has a closed end 6 on which a spring 7 is supported, which spring 7 urges the valve body 5 towards an open end 8 of the valve guide 4.
A bypass channel 9 is arranged between a coupling end 10 of the coupling 1 and a central portion of the valve guide 4, where the bypass channel 9 ends in opening 11. The valve body 5 is provided with a first seal 12 and a second seal 13, such that the valve body 5 seals the bypass channel 9 in the shown first position of the valve body 5.
A movable pin 14 is sealingly arranged in the elongate body 2, 3 and said movable pin 14 coacts with the locking sleeve 15 and a shoulder 16 on the valve body 5.
The locking sleeve 15 is urged by a spring 22 towards the shown third position. A locking body 17 is arranged around the locking sleeve 15. The locking body 17 is provided with radial through holes in which locking balls 18 are accommodated A lock operating sleeve 19 is slidably and coaxially arranged around the locking body 17. The lock operating sleeve 19 has a profiled inner surface such that a groove 20 is formed Furthermore, a bleed port 21 is arranged in the elongate body 2, 3 such that air from behind the valve body 5 can be vented to the outside of the coupling 1. This bleed port 21 ends into a protector groove 45. This protector groove 45 ensures that the first seal 12 is not damaged by the bleed port 21, when the valve body 5 with the first seal 12 is moved into the elongate body 3.
2 0 Figure 2 shows an embodiment 30 of a flat face male hydraulic coupling according to the invention. The coupling 30 has an elongate body out of two parts 31, 32. In the elongate body 31, 32 a valve guide 33 is arranged in which a valve body 34 is guided The valve guide 33 has a closed end 35 on which a spring 36 is supported, which spring 36 urges the valve body 34 towards an open end 37 of the valve guide 33.
A bypass channel 41 is arranged between a coupling end 42 of the coupling 30 and a central portion of the valve guide 33, where the bypass channel 41 ends in opening 43.
A first seal 38 is arranged in the valve guide 33 between the opening 43 in the central portion and the other end of the elongate body 31, 32 to seal the the valve 3 0 body 34 in the valve guide 33. A second seal 39 and a third seal 40 are arranged in the valve guide 33 between the opening 43 in the central portion and the open end 37 of the elongate body. The seals 38 and 40 are dimensionally close enough in diameter to allow that valve 34 is pressure balanced, such that only a small force is required to move the valve 34. This also applies to the seals 12 and 13, which allow valve 5 to be moved with low force.
Furthermore a bleed port 47 is arranged in the elongate body 31, 32 extending between the closed end 35 of the valve guide 33 and the outside of the coupling 30.
The elongate body 31, 32 has at the one end an external groove 44 for connection with locking means 18 of a flat face female hydraulic coupling 1.
The elongate body 31, 32 is furthermore provided with a compatibility groove 46, which allows the flat face male hydraulic coupling to be coupled to existing standard couplings, which are not according to the invention. As a result the male coupling 30 can already be applied to existing hydraulic installations, even when the female hydraulic coupling according to the invention is not yet applied in the hydraulic installation.
On the end of the valve body 34 distal from the flat face 37, a lock ring 48 is provided. When the valve body 34 is pushed fully into the elongate body 31, 32, the lock ring 48 will expand into the groove 49, such that the valve body 34 is locked in said position.
Figure 3 shows a first stage of connecting a flat face female hydraulic 2 0 coupling 1 and a flat face male hydraulic coupling 30. One end of the elongate male body 31, 32 is inserted into the open end of the valve guide 4 of the female elongate body 2, 3. The second seal 39 of the male coupling 30 seals the female elongate body 2, 3 onto the valve guide 33 of the male coupling 30. Simultaneously the valve body 34 of the male coupling 30 is moved against the spring force of the spring 36 from the first position (as shown in figure 2) towards the second position. As the first seal 38 and third seal 40 still seal onto the valve body 34, the opening 43 of the bypass channel 41 is still closed. Also at the female coupling 1 the first seal 12 and second seal 13 close the opening 11 of the bypass channel 9.
Both valve bodies 5, 34 are at balanced condition, because there is no 3 0 annular area present on which the oil pressure can build force. As a result, the valve bodies 5, 34 still remain in their position.
In figure 4 the male coupling 30 is inserted further into the female coupling 1, such that the locking balls 18 engage in the groove 44 of the male coupling 30 and a mechanical coupling is achieved The lock operating sleeve 19 prevents the locking balls 18 from being pushed out of the groove 44.
At the same time, the locking sleeve 15 is fully moved towards the fourth position, such that the movable pin 14 is engaged and acts on the shoulder 16 of the valve body 5 of the female coupling 1. As a result the valve body 5 is moved partially towards the second position, such that the first seal 12 and second seal 13 are moved towards one side of the opening 11 of the bypass channel 9 and the opening 11 is no longer sealed. As a result a pressure can build in the valve guide 4.
When sufficient pressure has been built in the valve guide 4 or opening 11, the force of the spring 7 will be overcome such that the valve body 5 of the female coupling 1 is moved into the second position. Also the force of the spring 36 will be overcome and the valve body 34 of the male coupling 30 will be moved into the second position, as is shown in figure 5.
As a result both bypass channels 9 and 41 of the female coupling 1 and male coupling 30 respectively are fully opened and the connection of both couplings 1, 30 is completed In case the oil flow is from the male hydraulic coupling 30 towards the female hydraulic coupling 1, a helical groove 50 is provided on the valve body 34 of the 2 0 male hydraulic coupling 30. When the valve body 34 is pushed inwardly to a position as shown in figure 3, the helical groove 50 will extend past the third seal 40. Due to the small size of the helical groove 50, the oil flow and the pressure increase will be minimal This allows for the operator the fully latch the coupling 1, 30 in the position as shown in figure 4. In this position the female hydraulic coupling 1 is provided with a flow path as described above and with the flow path provided with the helical groove 50 the pressure is allowed to build up further, such that both valve bodies 5, 34 can be moved away from each other as described above and shown in figure 5.
GB1817964.8A 2018-09-21 2018-11-02 Female hydraulic coupling, male hydraulic coupling and combination thereof Withdrawn GB2577345A (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
IN201811035711 2018-09-21

Publications (2)

Publication Number Publication Date
GB201817964D0 GB201817964D0 (en) 2018-12-19
GB2577345A true GB2577345A (en) 2020-03-25

Family

ID=64655332

Family Applications (1)

Application Number Title Priority Date Filing Date
GB1817964.8A Withdrawn GB2577345A (en) 2018-09-21 2018-11-02 Female hydraulic coupling, male hydraulic coupling and combination thereof

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GB (1) GB2577345A (en)

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1996021120A1 (en) * 1995-01-06 1996-07-11 Colder Products Company Low spill high flow quick coupling valve assembly
EP0814293A1 (en) * 1996-06-19 1997-12-29 Voswinkel GmbH A coupling piece for coupling for fluid under pressure
EP2042798A1 (en) * 2007-09-28 2009-04-01 Nagahori Industries Co., Ltd. Fluid coupling
EP2626612A1 (en) * 2012-02-08 2013-08-14 Eaton Hydraulics SAS Coupling device with residual pressure relief system

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1996021120A1 (en) * 1995-01-06 1996-07-11 Colder Products Company Low spill high flow quick coupling valve assembly
EP0814293A1 (en) * 1996-06-19 1997-12-29 Voswinkel GmbH A coupling piece for coupling for fluid under pressure
EP2042798A1 (en) * 2007-09-28 2009-04-01 Nagahori Industries Co., Ltd. Fluid coupling
EP2626612A1 (en) * 2012-02-08 2013-08-14 Eaton Hydraulics SAS Coupling device with residual pressure relief system

Also Published As

Publication number Publication date
GB201817964D0 (en) 2018-12-19

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