GB2134459A - High pressure hydraulic systems - Google Patents

High pressure hydraulic systems Download PDF

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Publication number
GB2134459A
GB2134459A GB08330555A GB8330555A GB2134459A GB 2134459 A GB2134459 A GB 2134459A GB 08330555 A GB08330555 A GB 08330555A GB 8330555 A GB8330555 A GB 8330555A GB 2134459 A GB2134459 A GB 2134459A
Authority
GB
United Kingdom
Prior art keywords
valve
port
valve member
pressure
high pressure
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.)
Granted
Application number
GB08330555A
Other versions
GB2134459B (en
GB8330555D0 (en
Inventor
Desmond Henry James Reynolds
Phillip Augustus Taft
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.)
ZF International UK Ltd
Original Assignee
Lucas Industries 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 Lucas Industries Ltd filed Critical Lucas Industries Ltd
Publication of GB8330555D0 publication Critical patent/GB8330555D0/en
Publication of GB2134459A publication Critical patent/GB2134459A/en
Application granted granted Critical
Publication of GB2134459B publication Critical patent/GB2134459B/en
Expired 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
    • F16KVALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
    • F16K31/00Actuating devices; Operating means; Releasing devices
    • F16K31/02Actuating devices; Operating means; Releasing devices electric; magnetic
    • F16K31/06Actuating devices; Operating means; Releasing devices electric; magnetic using a magnet, e.g. diaphragm valves, cutting off by means of a liquid
    • F16K31/0644One-way valve
    • F16K31/0655Lift valves
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60GVEHICLE SUSPENSION ARRANGEMENTS
    • B60G17/00Resilient suspensions having means for adjusting the spring or vibration-damper characteristics, for regulating the distance between a supporting surface and a sprung part of vehicle or for locking suspension during use to meet varying vehicular or surface conditions, e.g. due to speed or load
    • B60G17/02Spring characteristics, e.g. mechanical springs and mechanical adjusting means
    • B60G17/04Spring characteristics, e.g. mechanical springs and mechanical adjusting means fluid spring characteristics
    • B60G17/056Regulating distributors or valves for hydropneumatic systems
    • 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
    • F16KVALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
    • F16K31/00Actuating devices; Operating means; Releasing devices
    • F16K31/02Actuating devices; Operating means; Releasing devices electric; magnetic
    • F16K31/06Actuating devices; Operating means; Releasing devices electric; magnetic using a magnet, e.g. diaphragm valves, cutting off by means of a liquid
    • F16K31/0644One-way valve
    • F16K31/0651One-way valve the fluid passing through the solenoid coil
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10STECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10S280/00Land vehicles
    • Y10S280/01Load responsive, leveling of vehicle

Description

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GB 2 134 459 A
1
SPECIFICATION
Improvements in high pressure hydraulic systems
5 This invention relates to high pressure hydraulic systems of the kind in which a slave unit, for example an hydraulic suspension strut of a vehicle hydraulic suspension system, is supplied with fluid under pressure from a source through a control 10 valve assembly which is operative to maintain the slave unit in a desired condition.
In an hydraulic system of the kind set forth, it is important to control leakage past the control valve assembly when the source is inoperative. Elastomer-15 ic seals may be used to control leakage, but if a valve with such a seal opens against a pressure differential the seal is liable to extrusion. The seal must resist extrusion if it is to have a reasonable life, but as the pressure in the system is raised the seal needs to be 20 made of stiffer material to resist extrusion, and eventually a pressure is reached where the stiffness required reduces the sealing efficiency to an unacceptable level. Pressures above this will be defined as "high pressures".
25 Further, it is desirable to minimise the force required to operate valves in the control valve assembly, so that, for example, if the valves are solenoid-operated, the current taken by the solenoids will not be excessive.
30 In one known high pressure hydraulic system of the kind set forth the control valve assembly comprises two solenoid-operated valves, oppositely acting and arranged in series between the source and the slave unit, each valve being closed to 35 prevent flow through the valve in one direction and opened to permit flow in both directions under the control of the solenoid and the pressure differential acting across the valve, with a seating portion of one valve being of elastomeric material to provide a 40 leakproof seal when that valve is closed.
In another known high pressure hydraulic system of the kind set forth, the control valve assembly has first and second ports communicating with the source and the slave unit respectively, and a valve 45 member movable between alternative closed positions in which it closes either the first or the second port, and as open position in which communication between the ports is permitted, movement of the valve member being controlled by the pressure 50 differential acting across it, fluid flow past the valve member and a solenoid associated with each port, with an elastomeric seal to provide a leakproof seal when the first port is closed by the valve member.
In these known constructions therefore leakage 55 from the slave unit past the control valve is prevented by the leakproof seal, but that seal is able to resist extrusion as the solenoids are not sufficiently powerful to open the valves against a significant pressure differential. However, these constructions 60 have the disadvantage that the provision of two solenoids makes the assembly relatively complex and expensive to manufacture, and the second construction relies on fluid flow to operate the valve, which may not be totally reliable.
65 According to our invention, in a high pressure hydraulic system of the kind set forth the control valve assembly has first and second ports communicating with the source and slave unit respectively, and valve means for controlling fluid flow between the ports, the valve means being movable to close either the first or the second port, or to permit communication between the ports, the valve means comprising two relatively movable valve members, a first valve member for controlling fluid flow through the first port, movement of the first valve member being controlled by first biassing means urging the first valve member to close the first port, a solenoid producing a force urging the first valve member to open the first port, and the pressure differential across the first valve member, such that the solenoid force is unable to move the first valve member against a significant pressure differential, and a second valve member for controlling fluid flow through the second port, movement of the second valve member being controlled by the first valve member, the pressure differential across the second valve member, and second biassing means urging the second valve member to close the second port, and the control valve assembly incorporates elastomeric sealing means to provide a substantially leakproof seal when the first port is closed.
Providing one solenoid instead of two means that the control valve assembly becomes simpler, lighter and less expensive to manufacture, while retaining the advantages of the leakproof seal and small valve-operating forces. Further, the biassing means provide positive closure of the ports by their respective valve members.
The elastomeric sealing means is preferably provided on the first valve member.
When the solenoid is de-energised the position of the valve means is dependent on the pressure differential and the biassing means. Thus if the slave pressure, that is, the pressure in the slave unit is greater than the source pressure, that is, the pressure supplied from the source, the pressure differential and the first biassing means are operative to cause the first valve member to close the first port, while the second port is open. If the source pressure is greaterthan the slave pressure the pressure differential acts against the first biassing means to cause the first valve member to open the first port, but does not cause the second valve member to close the second port, so that communication between the ports is permitted.
Energisation of the solenoid produces a force which urges the first valve member to open the first port, but the solenoid force is unable to move the first valve member against a significant pressure differential. However, once the first valve member has opened the first port following energisation of the solenoid, it remains open as long as the solenoid remains energised, regardless of the pressure differential. The position of the second valve member is then dependent on the pressure differential and the second biassing.means. When the source pressure is greaterthan the slave pressure the pressure differential and the second biassing means are operative to ensure that the second valve member closes the second port. When the slave pressure is greater
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than the source pressure the pressure differential acts against the second biassing means, causing the second valve member to open the second port, so that communication between the ports is permitted. 5 Conveniently the first and second biassing means comprise first and second springs respectively. Preferably the first spring is stronger than the second spring.
The pressure from the source is preferably nor-10 mally maintained at a low level, and in operation is manipulated to provide pressure pulses having a range of pressures which includes and exceeds the range of pressures which occur in the slave unit. Normally the solenoid is de-energised, and so since 15 the slave pressure is greaterthan the source pressure, the first port is closed.
The source preferably comprises an accumulator, from which pressure is supplied to the control valve assembly via a valve and a manifold. Alternatively 20 the pressure source may comprise a pump.
A single source may be used to supply more than one slave unit through a suitable number of control valve assemblies.
Energisation and de-energisation of the solenoid 25 is preferably controlled by an electronic control system, which may also control the supply of pressure from the source.
In one embodiment the slave unit comprises an hydraulic suspension strut for a vehicle. Pressure in 30 the strut can be considered as a static pressure arising from the weight of the vehicle, which varies with changes in vehicle loading, and a dynamic pressure arising from ride movement, superimposed on the static pressure to produce a ripple at 35 ride frequency. Changes in these pressures will cause changes in ride height signals, in response to which the electronic control system manipulates the operation of the source and the control vaive assembly to constitute a suspension levelling 40 system.
It is particularly advantageous for such a suspension system to have a stored pressure source, such as an accumulator, as this enables the system to be operated when the means by which the accumulator 45 is charged, suitably an engine-driven or electric pump, is inoperative. The source may supply all the struts of the vehicle from a manifold, with a control valve assembly provided for each strut. Alternatively a single control valve assembly can control more 50 than one strut.
One embodiment of our invention is illustrated in the accompanying drawings, in which:-
Figure 7 is a layout of a high pressure system according to our invention;
55 Figure 2 is a side view of part,of the system of : Figurel-, including the control valve assemblies; ;
Figure.3 is a section.on the line 3-3 of Figure 2; and
Figure4\s a longitudinal section through a control valve assembly.- ~ . '• . --J ,
60 The layout of Figure 1 shows a high pressure !* hydraulic system;, in this case.a vehtcje suspension levelling systerruAsourceoffluidpressu re, conveniently an accumulator 1 supplied from an engine- • driven'pump 2, supplies hydraulicfluid to slave 65 units, comprising four hydraulic suspension struts 3,
4,5,6, through a common manifold 7 and control valve assemblies 8,9 and 10. As illustrated, each strut 3,4,5 or 6 is arranged to support a wheel of the vehicle. The struts 3,4 for the front wheels are 70 supplied through separate valve assemblies 8 and 9 respectively, while the struts 5,6 for the rear wheels are supplied through a common valve assembly 10.
A three-way valve 11 is interposed between the accumulator 1 and the manifold 7, the valve 11 being 75 adapted to connect the manifold 7 either to the accumulator 1 or to a reservoir 12 at atmospheric pressure. As can be seen in Figure 3, a filter 13 is located in the connection between the manifold 7 and the valve 11.
80 The manifold 7 is shown in detail in Figures 2 and
3, while the detailed construction of the control valve assembly 8(9 and 10 are identical) is shown in Figure
4.
The assembly 8 has a cylindrical housing portion 85 14 in which is located a solenoid winding 15. Two housing end portions 16,17 of stepped outline are also provided. The first of these, 16, is of nonmagnetic material and has a stepped bore 18, part of which forms a first port 19. A seal 20 seals the end 90 portion 16 against the manifold 7. The second end portion 17 is of magnetic material, and has a stepped bore 21, an inner portion of which farms the second port 22. At its outer end the bore 21 is screw-threaded for connection to a line (not shown) leading 95 to the strut 3. A seal 23 seals between the two end portions 16,17. A cavity 24 is defined between the two end portions 16,17, in which is located a valve means 25.
The valve means 25 comprises two relatively 100 movable valve members 26,27. A first valve member 26 is adapted to control fluid flow through the first port 19. The first valve member 26 has an elastomeric seat 28 to provide a substantially leak-proof seal when the first port 19 is closed. The valve 105 member 26 is urged to close the first port 19 by first biassing means comprising a spring 29, which acts between the end portion 17 and an abutment ring 30 located round the first valve member 26. The abutment ring 30 is attached to the first valve 110 member 26 by a pin 31 which passes through a diametral hole 32 in the valve member 26. The first valve member 26 is of magnetic material so that it is responsive to energisation and de-energisation of the solenoid 15, and is also responsive to the 115 pressure differential across it. Energisation of the solenoid 15 magnetises the stationary end portion 17 and the valve member 26, which produces a force urging the valve member 26 inwardly in orderto open the first port 19. However, the arrangement is .120 such that this force isnot sufficient to move the valve member 26 against a significant pressure different tial. • . . -
The second valve member 27 is adapted to control: fluid flow through the second port 22. The second 125 valve member 27 slides in a blind bore 33 at the -innepend of the first valve member. 2®r«and is urged towardsthe second port 22 by aseeohd'biasiSentj '■ means comprising a spring 34 acting betweeh the first and second valve members. The second valve 130 member27 is connected to the first valve member-26
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GB 2 134 459 A
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by a pin 35 working in a slot 36 in the first valve member, to provide limited relative movement between the valve members. The second valve member 27 is therefore controlled by the first valve 5 member 26 and the spring 34, and also by the pressure differential acting across it. However, the solenoid 15 does not affect the second valve member 27, which is of non-magnetic material.
The assembly 8 is arranged so that when the 10 solenoid 15 is de-energised the position of the valve means 25 depends on the pressure differential and the biassing means. If the strut pressure is greater than the manifold pressure the assembly is in the position shown in Figure 4, with the pressure 15 differential and the first spring 29 acting to ensure that the first valve member 26 closes the first port 19. The second port 22, however, remains open. If the manifold pressure is greaterthan the strut pressure, the pressure differential actes against the first 20 spring, and the valve members move into a balanced state in which both the first and second ports 19 and 22 are open, thus permitting fluid flow.
Energisation of the solenoid 15 moves the first valve member 26 into abutment with the inner end 25 of the housing end portion 17 and opens thefirst port 19, provided that there is no significant pressure differential opposing the solenoid force. Once the first valve member 26 is in this position it remains there as long as the solenoid is energised, regardless 30 of the pressure differential. The position of the second valve member 27 is then dependent on the pressure differential and the second spring 34. When the manifold pressure is higherthan the strut pressure the pressure differential and the second 35 spring 34 ensure that the second port 22 is closed. When the strut pressure is greaterthan the manifold pressure the pressure differential acts against the spring 34, moving the second valve member 27 relative to the first to open the second port 22, 40 permitting fluid flow between the ports.
The solenoids 15 of the assemblies 8,9,10 are connected by leads 37 to an electronic control 38, which is also connected to the three-way valve 11, and receives ride height signals from the struts 45 through connections 39 (only that for the strut 3 is shown). This forms an electronic control system, which works in response to the ride height signals to control energisation and de-energisation of the solenoids and to control the three-way valve 11 to 50 provide in the manifold pressure pulses with a range which includes and exceeds the range of pressures occuring in the struts 3,4, 5, 6, in orderto regulate the fluid flow into and out of the struts.
In operation, the pressure in the manifold 7 is 55 normally low, and the solenoids 15 are de-energised, so that the valve means of each assembly 8,9,10 is in the position shown in Figure 4, with the first valve member 26 closing the first port 19, the elastomeric seat 28 providing a leakproof seal.
60 Considering the operation of one assembly only, say the assembly 8, if no adjustment of the strut 3 is required when the manifold pressure is pulsed, the solenoid of the valve assembly 8 is energised when the pulse starts. When the manifold pressure 65 reaches the strut pressure the solenoid force moves thefirst valve member 26 to open thefirst port 19, but the second valve member 27 then closes the second port 22, so that no fluid flow is allowed.
When the manifold pressure decreases the solenoid is de-energised, so that the pressure differential and the springs 29 and 34 return the valve members 26, 27 to their original positions.
If the pressure in the strut 3 is to be increased, the associated solenoid 15 is not energised at the beginning of the pulse. Thus, when the manifold pressure exceeds the strut pressure the first port 19 is opened to allow fluid flow into the strut 3. When the desired strut pressure is reached the solenoid is energised, and, as the valve member 26 is balanced, the solenoid force is able to move thefirst valve member inwardly, allowing the second valve member 27 to close the second port 22, so that further fluid flow into the strut 3 is prevented. On decrease of the manifold pressure the solenoid 15 is de-energised so that the valve members 26,27 return to their original positions.
If the pressure in the strut 3 is to be decreased, the associated solenoid is energised at the start of the pulse, so that the valve means moves to close the second port 22 when the manifold pressure reaches the strut pressure. On decrease of the manifold pressure the pressure differential acts on the second valve member 27, moving it against the force in the spring 34 to open the second port 22 to allow fluid to flow out of the strut 3. When the desired strut pressure is reached the solenoid 15 is de-energised, so that the valve members return to their original positions.
Any of these three operations can be performed during one manifold pressure pulse, so that each control valve assembly can operate its strut or struts independently of the others. Levelling of the vehicle can therefore be performed in one pressure pulse by appropriate control of the solenoids 15. The control system may also control the pressure pulses as required. Thus, if the strut pressure is to be decreased, the manifold pressure may be decreased once it has reached strut pressure.
The use of the accumulator 1 has the advantage that the system is able to operate even when the engine and thus the pump 2, are switched off, so that the vehicle will automatically level itself if the load on it is varied after the engine has been switched off. Alternatively the pump 2 may be electrically operated, and wired into the vehicle ignition system.
In a modification the source of pressure may comprise a pump, which may be electric, and arranged so that it can operate even when the ignition system is switched off, thus enabling the levelling system to operate at any time.
The control valve assemblies 8,9,10 provide a simple and light construction as they have only one solenoid. The use of one solenoid also has the advantage of simplifying the control of the system. The use of the biassing means provides positive closure of the two ports by their respective valve members.
The control valve assembly can be used in other systems where these features are advantageous. The relative forces provided by the solenoid and the
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biassing means may be altered to suit the operating pressure and operation of the system.

Claims (16)

CLAIMS 5
1. A high pressure hydraulic system of the kind set forth, in which the control valve assembly has first and second ports communicating with the source and slave unit respectively, and valve means
10 for controlling fluid flow between the ports, the valve means being movableto close either the first or the second port, orto permit communication between the ports, the valve means comprising two relatively movable valve members, a first valve member for 15 controlling fluid flowthrough the first port, movement of the first valve member being controlled by first biassing means urging thefirst valve member to close the first port, a solenoid producing a force urging thefirst valve member to open thefirst port, 20 and the pressure differential across the first valve member, such that the solenoid force is unable to move the first valve member against a significant pressure differential, and a second valve member for controlling fluid flow through the second port, 25 movement of the second valve member being controlled by the first valve member, the pressure differential across the second valve member, and second biassing means urging the second valve member to close the second port, and the control 30 valve assembly incorporates elastomeric sealing means to provide a substantially leakproof seal when the first port is closed.
2. A high pressure hydraulic system as claimed in claim 1, in which the elastomeric sealing means is
35 provided on the first valve member.
3. A high pressure hydraulic system as claimed in claim 1 or claim 2, in which, when the solenoid is de-energised, the position of the valve means is dependent on the pressure differential and the
40 biassing means, such that if the slave pressure is greaterthan the source pressure, the pressure differential and the first biassing means are operative to ensure that the first valve member closes the first port, and the second port is open; and if the 45 source pressure is greaterthan the slave pressure the pressure differential acts against the first biassing meansto cause thefirst valve memberto open the first port, but does not cause the second valve memberto close the second port, so that communi-50 cation between the ports is permitted.
4. A high pressure hydraulic system as claimed in any preceding claim, in which, once the first valve member has opened the first port in response to energisation of the solenoid, thefirst port remains
55 open as long as the solenoid remains energised, the position of the second valve member then being dependent on the pressure differential and the second biassing means, such that if the source pressure is greaterthan the slave pressure the 60 pressure differential and the second biassing means are operative to ensure that the second valve member closes the second port; and if the slave pressure is greater than the source pressure the pressure differential acts against the second bias-65 sing means to cause the second valve memberto open the second port, so that communication between the ports is permitted.
5. A high pressure hydraulic system as claimed in any preceding claim, in which the first and second
70 biassing means comprise first and second springs.
6. A high pressure hydraulic system as claimed in any preceding claim, in which the pressure from the source is normally maintained at a low level, and in operation is manipulated to provide pressure
75 pulses having a range of pressures which includes and exceeds the range of pressures which occur in the slave unit.
7. A high pressure hydraulic system as claimed in any preceding claim, in which the source compris-
80 es an accumulator.
8. A high pressure hydraulic system as claimed in any of claims 1 to 6, in which the source comprises a pump.
9. A high pressure hydraulic system as claimed
85 in any preceding claim, in which a single source supplies more then one slave unit through a suitable number of control valve assemblies.
10. A high pressure hydraulic system as claimed in any preceding claim, in which an electronic
90 control system controls energisation and de-energisation of the solenoid, and the supply of pressure from the source.
11. A high pressure hydraulic system as claimed in any preceding claim, in which the slave unit
95 comprises an hydraulic suspension strut.
12. A high pressure hydraulic system as claimed in any preceding claim, in which the source supplies at least one hydraulic suspension strut for a wheel of a vehicle, and the system incorporates an electronic
100 control system for manipulating the operation of the source and the control valve assembly in response to ride height signals to constitute a suspension levelling system.
13. A high pressure hydraulic system as claimed 105 in claim 12, in which the source comprises an accumulator which supplies all the struts for the vehicle from a manifold.
14. A high pressure hydraulic system as claimed in claim 12 or claim 13, in which a control valve
110 assembly is provided for each strut.
15. A high pressure hydraulic system as claimed in claim 12 or claim 13, in which a single control valve assembly controls more than one strut.
16. A high pressure hydraulic system of the kind 115 set forth substantially as described herein with reference to and as illustrated in the accompanying drawings.
Printed for Her Majesty's Stationery Office, by Croydon Printing Company Limited, Croydon, Surrey, 1984.
Published by The Patent Office, 25 Southampton Buildings, London, WC2A1 AY, from which copies may be obtained.
GB08330555A 1982-11-24 1983-11-16 High pressure hydraulic systems Expired GB2134459B (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
GB8233554 1982-11-24

Publications (3)

Publication Number Publication Date
GB8330555D0 GB8330555D0 (en) 1983-12-21
GB2134459A true GB2134459A (en) 1984-08-15
GB2134459B GB2134459B (en) 1986-01-15

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ID=10534488

Family Applications (2)

Application Number Title Priority Date Filing Date
GB08330555A Expired GB2134459B (en) 1982-11-24 1983-11-16 High pressure hydraulic systems
GB08330620A Expired GB2133120B (en) 1982-11-24 1983-11-16 Fluid flow control valve assemblies

Family Applications After (1)

Application Number Title Priority Date Filing Date
GB08330620A Expired GB2133120B (en) 1982-11-24 1983-11-16 Fluid flow control valve assemblies

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US (2) US4508012A (en)
EP (2) EP0110620A1 (en)
JP (2) JPS59113384A (en)
GB (2) GB2134459B (en)

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Also Published As

Publication number Publication date
GB2134459B (en) 1986-01-15
GB2133120A (en) 1984-07-18
US4541610A (en) 1985-09-17
JPS59110984A (en) 1984-06-27
JPS59113384A (en) 1984-06-30
EP0110619A1 (en) 1984-06-13
GB8330620D0 (en) 1983-12-21
US4508012A (en) 1985-04-02
EP0110620A1 (en) 1984-06-13
GB2133120B (en) 1986-03-19
GB8330555D0 (en) 1983-12-21

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