GB2346666A - Spring and damper unit - Google Patents

Spring and damper unit Download PDF

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Publication number
GB2346666A
GB2346666A GB9903248A GB9903248A GB2346666A GB 2346666 A GB2346666 A GB 2346666A GB 9903248 A GB9903248 A GB 9903248A GB 9903248 A GB9903248 A GB 9903248A GB 2346666 A GB2346666 A GB 2346666A
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United Kingdom
Prior art keywords
unit
damping
chamber
housings
damping chamber
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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
GB9903248A
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GB2346666B (en
GB9903248D0 (en
Inventor
Adrian Roger Ward
Jon Frank Ross Whyte
David Edward Cullimore
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.)
ATB Sales Ltd
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ATB Sales Ltd
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Publication date
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Priority to GB9903248A priority Critical patent/GB2346666B/en
Publication of GB9903248D0 publication Critical patent/GB9903248D0/en
Priority to AT00901782T priority patent/ATE246775T1/en
Priority to EP00901782A priority patent/EP1153228B1/en
Priority to DE60004329T priority patent/DE60004329T2/en
Priority to AU23081/00A priority patent/AU2308100A/en
Priority to PCT/GB2000/000327 priority patent/WO2000047912A1/en
Publication of GB2346666A publication Critical patent/GB2346666A/en
Application granted granted Critical
Publication of GB2346666B publication Critical patent/GB2346666B/en
Anticipated expiration legal-status Critical
Expired - Fee Related 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
    • F16FSPRINGS; SHOCK-ABSORBERS; MEANS FOR DAMPING VIBRATION
    • F16F9/00Springs, vibration-dampers, shock-absorbers, or similarly-constructed movement-dampers using a fluid or the equivalent as damping medium
    • F16F9/06Springs, vibration-dampers, shock-absorbers, or similarly-constructed movement-dampers using a fluid or the equivalent as damping medium using both gas and liquid
    • 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
    • F16FSPRINGS; SHOCK-ABSORBERS; MEANS FOR DAMPING VIBRATION
    • F16F9/00Springs, vibration-dampers, shock-absorbers, or similarly-constructed movement-dampers using a fluid or the equivalent as damping medium
    • F16F9/32Details
    • F16F9/44Means on or in the damper for manual or non-automatic adjustment; such means combined with temperature correction
    • F16F9/46Means on or in the damper for manual or non-automatic adjustment; such means combined with temperature correction allowing control from a distance, i.e. location of means for control input being remote from site of valves, e.g. on damper external 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
    • F16FSPRINGS; SHOCK-ABSORBERS; MEANS FOR DAMPING VIBRATION
    • F16F9/00Springs, vibration-dampers, shock-absorbers, or similarly-constructed movement-dampers using a fluid or the equivalent as damping medium
    • F16F9/32Details
    • F16F9/50Special means providing automatic damping adjustment, i.e. self-adjustment of damping by particular sliding movements of a valve element, other than flexions or displacement of valve discs; Special means providing self-adjustment of spring characteristics
    • F16F9/516Special means providing automatic damping adjustment, i.e. self-adjustment of damping by particular sliding movements of a valve element, other than flexions or displacement of valve discs; Special means providing self-adjustment of spring characteristics resulting in the damping effects during contraction being different from the damping effects during extension, i.e. responsive to the direction of movement
    • 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
    • F16FSPRINGS; SHOCK-ABSORBERS; MEANS FOR DAMPING VIBRATION
    • F16F9/00Springs, vibration-dampers, shock-absorbers, or similarly-constructed movement-dampers using a fluid or the equivalent as damping medium
    • F16F9/32Details
    • F16F9/58Stroke limiting stops, e.g. arranged on the piston rod outside the cylinder
    • F16F9/585Stroke limiting stops, e.g. arranged on the piston rod outside the cylinder within the cylinder, in contact with working fluid

Abstract

A spring and damper unit (10) comprises two telescopically movable housings (11, 12) each having a cavity (16 or 23) enclosed by a respective one of two substantially coaxial and radially spaced circumferential walls (15 or 19/20) and a piston (24) disposed in the cavity (23) enclosed by an inner one of the walls (19/20) to separate a spring chamber (27) containing a gaseous medium, for example air, which is compressible on movement of the housings together in a compression stroke, from a first damping chamber (26) for a damping fluid, for example hydraulic oil, which is displaceable therefrom during the compression stroke. The walls are each provided with a respective one of two oppositely directed projections (28, 29; 31, 32) which together with substantially concentric portions of the walls bound a second damping chamber (33) for receiving the displaced fluid and which are movable towards another on movement of the housings (11, 12) apart in a rebound stroke thereof to cause a reduction in the volume of the second damping chamber (33) for expulsion of fluid to be returned to the first damping chamber (26). The first and second damping chambers (26, 33) preferably have substantially the same area in cross-section, so that there is equal displacement from the chambers.

Description

SPRING AND DAMPER UNIT The present invention relates to a spring and damper unit and has particular reference to springing and damping in a compression phase of the unit.
Spring and damper units of coaxial mode of construction conventionally consist of a coil spring effective in compression and surrounding a double-acting hydraulic, pneumatic or gas telescopic damper. The damper normally has a rod carrying a piston which slides in a cylinder filled with fluid and the movement of which within the cylinder is resisted by throttled flow of the fluid through an opening or openings in the piston during passage from one side of the piston to the other. The damped movement of the piston is superimposed, in the mounted state of the unit, on the spring travel. The opening or openings in the piston can be influenced to provide different degrees of throttling between the compression phase and the rebound phase of the damper and also variable throttling in dependence on the rate of compression and/or rate of rebound. Such a unit is relatively bulky and heavy and allows limite, if any, access to the damper for adjustment purposes.
Also known are units consisting of a rubber spring combined with a diaphragm-actuated damper in which fluid is displaced through flow-throttling openings in a dividing wall.
These units are again bulky and heavy, since the mass of rubber provides a volume and weight penalty similar to a coil spring.
Some spring and damper units utilise gaseous and hydraulic media, with the gaseous medium, for example air, nitrogen or freon, separated from the hydraulic medium by a separator piston. Damping is performed, as in a conventional telescopic damper, by a damping piston carried by a rod and moving in cylinder filled with hydraulic fluid which is displaced through openings in the piston. The gaseous medium is compressible under movement of the separator piston and functions as a spring as well as an anti-cavitation measure in the case of higher rates of movement of the damping piston. Such a unit, in which cylinder chambers for the hydraulic medium and a chamber for the gaseous medium are in series, is long in relation to available stroke and has a large rising spring rate. tt is accordingly the object of the invention to provide a spring and damper unit which can be of relatively light and compact construction and can provide effective springing and damping respectively by a gaseous medium, such as air, and a damping fluid, such as hydraulic oil. A further object is the provision of a unit capable of a higher level of damping in the rebound phase by comparison with the compression phase and exhibiting reduced susceptibility to cavitation of the damping fluid in the case of higher stroke rates. Other objects and advantages of the invention will be apparent from the following description.
According to a first aspect of the present invention there is provided a spring and damper unit comprising two telescopically movable housings containing a spring chamber for a gaseous medium which is compressible on movement of the housings together in a compression stroke thereof, a first damping chamber for a damping fluid which is displaceable therefrom by a piston during the compression stroke and a second damping chamber for receiving the displaced fluid and returning the fluid to the first damping chamber on movement of the housings apart in a rebound stroke thereof, the second damping chamber being so arranged between the housings that movement of the housings apart causes a reduction in the volume of the second damping chamber for expulsion of fluid to be returned to the first damping chamber.
In such a unit, in which air or gas springing is produced by relative movement of the housings and damping by the piston in a compression phase, the damping fluid displaced in that phase is subsequently subjected to a positive pressure by the housings in the rebound phase. The retum flow of the damping fluid can thus be throttled to provide a high level of rebound damping with reduced or no risk of cavitation. The location of the second damping chamber between the two housings allows this chamber to have a concentric relationship to the first damping chamber, which contributes to the compact nature of the unit and significantly improves the achievable ratio of unit length to available stroke.
Preferably, the first and second damping chambers have substantially the same area in cross-section transversely to the directions of movement of the housings in the compression and rebound strokes. This cross-sectional relationship of the two damping chambers results in substantially equal fluid displacements from the two chambers, so that the piston can maintain a substantially constant position relative to, for example, an adjacent end of the second damping chamber and thus arrive in one of its end positions when the housings are fully moved together. This favours attainment of a high stroke length relative to unit length. In an advantageous constructional configuration the second chamber is formed by part of a cavity in one of the housings and the spring chamber, at least partial, by another part of the same cavity. Preferably, the spring chamber is additionally formed by part of a cavity in the other housing, a further part of which forms the first damping chamber. For preference, the piston is arranged to separate the spring chamber from the first damping chamber and is movable to reduce the volume of the first damping chamber for displacement of hydraulic fluid therefrom. The first-mentioned cavity thus provides for a volume interchange between the spring chamber and second damping chamber during operation of the unit and a similar interchange, producible by the piston, can take place between the spring chamber and the first damping chamber.
The second damping chamber, which is preferably annular, can be radially bounded by two substantially concentric circumferential wall portions respectively of the two housings and axially bounded by two oppositely directed projections each provided at a respective one of the wall portions. Each such projection for preference consists of or includes sealing means providing a seal relative to the respective other wall portion. If the damping fluid is a liquid, such as hydraulic oil, the sealing means in such an arrangement can be subject to lubrication by the liquid in the second damping chamber during movement of the housings apart, which reduces friction and extends the service life of the sealing means.
According to a second aspect of the invention there is provided a spring and damper unit comprising two telescopically movable housings each having a cavity enclosed by a respective one of two substantially coaxial and radially spaced circumferential walls, and a piston disposed in the cavity enclosed by an inner one of the walls to separate a spring chamber containing a gaseous medium which is compressible on movement of the housings together in a compression stroke thereof from a first damping chamber for a damping fluid which is displaceable therefrom during the compression stroke, the walls each being provided with a respective one of two oppositely directed projections which together with substantially concentric portions of the walls bound a second damping chamber for receiving the displaced fluid and which are movable towards another on movement of the housings apart in a rebound stroke thereof to cause a reduction in the volume of the second damping chamber for expulsion of fluid to be returned to the first damping chamber.
Such a unit, based on the functional principes of the first aspect of the invention, provides a particularly simple constructional realisation of the invention by way of two housing circumferential walls which have concentric portions and oppositely directed projections together bounding the second damping chamber. The spring chamber can then be conveniently formed by part of the cavity enclosed by the outer wall and part of the cavity enclosed by the inner wall, whilst the first damping chamber can be formed by a further part of the latter cavity. Each projection can comprise a seal sealingly contacting the respective other wall, each seal preferably being axially located in a groove.
The inner wall can be provided with duct means for conveying hydraulic fluid between the damping chambers, in which case that wall can advantageously comprise two substantially concentric and radially spaced tubes, with the duct means being formed in part by the space between the tubes. The tubes themselves can be connected at one pair of associated ends thereof with a closure member and at the other pair of associated ends thereof with an annular piston member defining the respective one of the projections at its outer circumference, the annular piston member being effective to simultaneously and reciprocally vary the volumes of the spring chamber and the second damping chamber during movement of the housings together and apart. The use of tubes results in a modular construction whereby the unit length and thus the stroke length may be able to be relatively easily modified between production runs. Constructional simplicity is enhanced if the outer one of the tubes is threadedly connected with and the inner one of the tubes clamped between the closure member and the annular piston member. A secure and stable assembly can then be achieved simply by tightening the closure member relative to the annular piston.
In an extension of the modular format, the outer wall can comprise a further tube which is partly concentric with and radially outwardly spaced from the outer tube of the inner one of the walls and which is provided at one end with the respective one of the projections. This further tube can similarly be threadedly connected at its other end with an own closure member. The unit is thus capable of being easily assembled from threadedlyinterengaged components with interposition of appropriate seats to ensure leakproof connections.
An embodiment of the present invention will now be more particularly described by way of example with reference to the accompanying drawings, in which: Fig. 1 is a schematic axial section of a spring and damper unit embodying the invention and shown in a state between a full compression setting and a full rebound setting ; Fig. 2 is a view similar to Fig. 1, but showing the full compression setting; and Fig. 3 is a view similar to Fig. 1, but showing the full rebound setting.
Referring now to the drawings, there is shown a coaxial pneumatic spring and hydraulic damper unit 10 comprising an outer housing 11 and an inner housing 12, the two housings being telescopically interengaged for movement together to execute a compression stroke and movement apart to execute a rebound stroke. In an installed state, the spring behaviour of the unit is effective primarily in the compression stroke to soften shock forces transmitted between two components, for example a vehicle wheel and vehicle body, intercoupled by the unit and the damping behaviour primarily in the rebound stroke to damp oscillations arising from spring restoration. Damping behaviour is also present in the compression stroke, but generally to a lesser degree.
The outer housing 11 comprises an end closure member 13, which incorporates an attachment eye 14, and a tube 15 threadedly connected to the closure member 13 so as to define a cylindrical cavity or bore 16 closed at one end by the member 13 and open at the other end. The inner housing 12 comprises a similar end closure member 17, which also incorporates an attachment eye 18, an inner tube 19 and outer tube 20, which are concentric with and radially spaced from each other and also concentric with and radially spaced from the tube 15 of the outer housing 13, and an annular piston member 21. The outer tube 20 is threadedly connected to both the closure member 17 and piston member 21 and the inner tube 19 is clamped between these two members by the process of tightening the members towards each other, a resilient sealing ring 22 being disposed between the inner tube 19 and piston member 21. The inner tube 19 defines a cylindrical cavity or bore 23 which is closed at one end by the closure member 17 and open at the other end via the opening in the piston member 21, the diameter of this opening being reduced relative to the bore diameter by an inwardly protruding lip of the piston member. Slidably arranged in the bore 23 of the inner tube 19 of the inner housing 12 is a piston 24 provided with an annular seal 25 sealingly bearing against the inner wall surface of the tube 19. The piston 24 inclusive of seal 25 separates an inner damping chamber 26, on the right, filled with hydraulic oil from a spring chamber 27, on the left, filled with air under pressure. Since the bore 23 of the inner housing 12 communicates with the bore 16 of the outer housing 13 via the opening in the piston member 21, the spring chamber 27 is formed by parts of both bores. The inner damping chamber 26 is formed solely by part of the bore 23. The respective volumes of the two chambers 26 and 27 vary in dependence on the position of the piston 24.
The tube 15 of the outer housing 11 is provided at its free end with a radially inwardly directed projection in the form of two axially spaced beads or flanges 28 bounding a groove which receives an annular seal 29 in sealing contact with the outer wall surface of the outer tube 20 of the inner housing 12. An annular wiper seal 30 is present at the termination of the tube 15 to prevent ingress of foreign matter. The annular piston member 21 is analogously provided at its outer circumference with a radially outwardly directed projection in the form of two axially spaced beads or flanges 31 bounding a groove which receives a seal 32 in sealing contact with the inner wall surface of the tube 15 of the outer housing 11. The two projections and variable lengths of the concentric wall surfaces, which are disposed therebetween, of the tubes 15 and 20 bound an outer damping chamber 33 similarly filled with the hydraulic oil. The projection at the annular piston member 21 separates this chamber from the spring chamber 27. The outer damping chamber 33 is thus formed from a further part of the bore 23. The diameters of the bores 16 and 23 are so selected that the inner and outer damping chambers 26 and 33 have at least substantially the same area in cross-section.
The annular seals 25,29 and 32 preferably each consist of a compound body composed of two axially spaced polytetrafluoroethylene rings and intermediate rubber flange of a radially outer rubber seat for the rings. Each seal is at some stage in execution of the compression and rebound strokes caused to wipe a surface with residual hydraulic oil and thus is subject to oil lubrication.
The closure member 13 of the outer housing 11 has an inlet (not shown) and a non-retum valve 34 for feed of pressurised air into the spring chamber 27. The closure member 17 of the inner housing 12 correspondingly has inlets 35 (only one shown) usable for feed of hydraulic oil into the damping chambers 26 and 33. The damping chambers are interconnected in terms of flow by a duct system formed by a space 36 left between the inner and outer tubes 19 and 20 of the inner housing 12, an opening 37 provided in the tube 20 and connecting the space 36 with the outer damping chamber 33, and two channels 38 (only one shown) provided in the closure member 17 and connecting the space 36 with the inner damping chamber 26. Removably mounted in the inlets 35 are ajustable flow control valves 39 (only one shown) each with a valve member 40 controlling flow through the respective channel 38 between the damping chambers 23 to 33.
The unit 10 incorporates an auxiliary drive for the piston 24, the drive being in the form of a drive rod 41 which extends along a common axis of the bores 16 and 23 and piston 24 and which is threadedly secured at one end in the closure member 13 of the outer housing 11 and provided at the other end with a radially enlarged head. In the unloaded state of the unit, the head is normally disposed at a spacing's'from the piston 21. The rod 41 has drillings 42 for feed of air to and from the region of the piston, which is mechanically separate from the rod 41 and other components of the unit. The piston thus floats in the bore 23, subject only to constraints on movement provided by friction and fluid loadings.
Finally, to cushion the end stages of movement of the housings 11 and 12 together in the compression phase and apart in the rebound phase the unit includes appropriate resilient cushioning elements. The cushioning element associated with the compression phase comprises an annular rubber body 43 seated in an intemal recess in the closure member 13 of the outer housing 11 and co-operable with the piston member 31 of the inner housing 12, the body 43 and member 31 having mutually facing abutment surfaces of generally complementary shape. The cushioning element associated with the rebound phase comprises a compressible elastomer cylinder 44 located between two end washers and slidably mounted on the drive rod 41 between the head thereof and a stop collar 45, for example a spring ring, secured on the rod at a spacing from the head. The elastomer cylinder 44 is co-operable, via the lefthand washer, with the inwardly protruding lip of the piston member 21 and can, under compression by the lip, deform by sliding movement of its constituent material along the rod.
In use of the unit 10, with the chambers 26,27 and 33 appropriately filled with air under pressure and hydraulic oil the two attachment eyes 14 and 18 of the housings 11 and 12 are respectively coupled to two components intended to be relatively movable by way of a damped spring coupling. The unit can, for example, be incorporated in a two-wheel vehicle between a wheel axle and a frame or chassis. Normally, two or more units would be associated with an individual axle.
In the case of a compression stroke of the housings 11 and 12, thus telescopic movement of the housings together (whether starting from a fully expanded setting as in Fig. 3 or an intermediate position such as in Fig. 1 if the weight of a supported one of the two coupled components induces partial compression of the unit 10 in the normal state), the piston member 21 moves in the bore 16 towards the closure member 13 and reduces the volume of the spring chamber 27, which causes progressive compression of the already pressurised air in the chamber. The compressing air acts on the piston 24 to move it in the bore 23 in opposite sense to the movement of the piston member 31, i. e. towards the other closure member 17, and thus causes the piston 24 to reduce the volume of the inner damping chamber 26. The movement of the piston member 21 along the bore 16 has the simultaneous effect of increasing the volume of the outer damping chamber 33. The reduction in volume of the inner damping chamber 26 and increase in volume of the outer damping chamber 33 constrains a displacement of hydraulic oil from the former to the latter via the duct system formed by the channels 38, space 36 and opening 37.
Preferably, one of the channels 38 is assigned to the flow in direction from the chamber 26 to the chamber 33 and the other chamber to the flow in reverse direction. The associated valves 39 are then effective in opposite sense to block flow in one direction and allow throttled flow in the other direction. The degree of throttling of the permitted flow determines the degree of damping, which is preferably relatively light in the compression phase of the unit. In this phase, the unit thus allows movement of the two coupled components towards one another against the resistance presented by the compressing air functioning as a pneumatic spring and damps that movement to a selected degree by the throttled displacement of the hydraulic oil.
Due to the equality or approximate equality of the cross-sectional areas of the two damping chambers 26 and 33 the fluid displacement of the chambers is the same or substantially the same during operation of the unit and the piston 24 consequently remains in the same position relative to the outer housing 11 in both the compression phase and the rebound phase, as is evident from comparison of Figs. 1,2 and 3. This position of the piston 24 is selected to be close to the free end of the tube 15 of the outer housing 11, so that in the fully compressed state of the unit as shown in Fig. 2 both the piston and the free end of the tube 15 are closely adjacent to the closure member 17 of the inner tube 12. A maximum spring stroke and maximum damping stroke are thus derived from the maximum amount of intended available relative travel of the two housings 11 and 12 in the compression stroke. In the fully compressed state of the unit, as evident from Fig. 2, the piston member 21 abuts and deforms the rubber body 43, which thus cushions the end stage of movement of the housings 11 and 12 in the compression stroke.
The movement of the piston 24 to reduce the volume of the inner damping chamber 26 simultaneously causes an increase in the volume of the spring chamber 27, in effect a volume interchange between the two chambers. Because of the cross-section relationship of the bores 16 and 23, this increase is necessarily less than the decrease in volume of the spring chamber 27 produced at the same time by the moving piston member 21. Compression of the air continues to take place, but with a controlled attenuation and consequently a reduction in the rising rate of the air spring by comparison with the rate that would result from constant reduction in the volume of the air chamber without a compensating, proportional increase in that volume.
In the event of a very high rate of compression of the unit 10, the air in the spring chamber 27 may compress so rapidly that the piston 24 cannot move, due to the pressure created by throttling of the outflow of hydraulic oil from the inner damping chamber 26, at the same rate as that of the relative movement of the two housings 11 and 12. If the two movements become out-of-phase in this manner, the piston 24 will move relative to the outer housing 11 in direction towards the closure member 13 of that housing. Should the piston travel towards the closure member 13 be sufficient to overcome the spacing's', the piston will then come into contact with the head of the drive rod 41 and thereafter be mechanically positively driven by the rod. The mechanical drive will persist for such time as the rate of compression of the unit, i. e. rate of relative movement of the housings 11 and 12 towards one another, exceeds a predetermined threshold rate. The threshold rate is determined primarily by the rate of fluid outflow permitted by the respective valve 39 and the dimension of the spacing's'. The fluid drive provided by the compressed air continues to be applied throughout and will take over from the mechanical drive if the rate of compression reduces below the threshold rate and a clearance is reinstated between the head of the rod 41 and the adjacent face of the piston 24. The drillings 42 in the rod 41 inclusive of the head thereof ensure that the cross-sectional obstruction of part of the air chamber 27 by the rod 41 and elastomer cylinder 44 does not diminish the force of compressed air acting on the piston 24.
In the case of the rebound stroke, on relief of the loading of the coupled components that induced the compression stroke, the force generated by the compressed air in the spring chamber 27 urges the two housings 11 and 12 apart, whereby the piston member 21 enlarges the volume of the spring chamber 27 and simultaneously reduces the volume of the outer damping chamber 33, thus causes an interchange of volume of the two chambers. The reducing volume of the damping chamber 33 places the hydraulic oil in that chamber under a positive pressure and displaces oil from the chamber 33 to the inner damping chamber 26 through the duct system provided by the opening 37, space 36 and associated one of the channels 38. In that case the valve 39 permitting flow through that channel exerts a relatively strong throttling effect on the flow to produce an appreciable retardation or damping of the relative movement of housings 11 and 12 apart. The positive pressure acting on the oil in the outer damping chamber 33 resists any tendency of the oil to cavitate in that chamber. Similarly, the compressed air continuing to act on the piston 24 in the sense of urging it towards the closure member 17 ensures that the volume enlargement of the inner damping chamber 26 is produced solely by inflowing oil, so that cavitation cannot occur in that chamber. The piston 24 moving in the bore 23 of the inner housing 12 again remains in the same position relative to the outer housing 11.
If the housings 11 and 12 in the rebound stroke attain the maximum extended position, the inwardly protruding lip of the piston member 21 contacts the elastomer cylinder 44, in particular the adjacent one of the end washers at the cylinder, towards the end of the relative movement of the housings and compresses the cylinder to cushion the final movement. Compression of the cylinder is accommodated by departure from abutment with the stop collar 45 and partial displacement along the rod 41. The end setting is shown in Fig. 3. The location of this rebound cushioning element within the stroke length of the unit 10 contributes to the compact form of the unit.
All three seals 25,29 and 32 in the unit are subject to lubrication by the hydraulic oil during use, the seal 25 primarily during the compression stroke and the seals 29 and 32 primarily during the rebound stroke. The lubrication increases sealing integrity and extends service life.
The valves 39 can be constructed to be individually ajustable and are readily accessible for adjustment purposes. In principe, a single valve and single channel can suffice to control flow between the damping chambers and different forms of duct system are possible. In the case of the described twin-tube construction of the inner housing, utilisation of a space between the tubes for fluid transfer is convenient and has the advantage of avoiding the need for long drillings in solid material, but a bore in a single solid circumferential wall, or another arrangement, is equally possible. Apart from constructional aspects, there is also scope for variation of chamber shapes, utilisation of additional pistons or different forms of pistons, and provision of assist or restorative springs or spring bodies. The spring chamber can employ a gas other than air and the damping fluid itself can be a gas, rather than a liquid, or even a gas and liquid mixture (emulsion).

Claims (24)

  1. CLAIMS 1. A spring and damper unit comprising two telescopically movable housings containing a spring chamber for a gaseous medium which is compressible on movement of the housings together in a compression stroke thereof, a first damping chamber for a damping fluid which is displaceable therefrom by a piston during the compression stroke and a second damping chamber for receiving the displaced fluid and returning the fluid to the first damping chamber on movement of the housings apart in a rebound stroke thereof, the second damping chamber being so arranged between the housings that movement of the housings apart causes a reduction in the volume of the second damping chamber for expulsion of fluid to be returned to the first damping chamber.
  2. 2. A unit as claimed in claim 1, wherein the first and second damping chambers have substantially the same area in cross-section transversely to the directions of movement of the housings in the compression and rebound strokes.
  3. 3. A unit as claimed in claim 1 or claim 2, wherein the second damping chamber is formed by part of a cavity in one of the housings and the spring chamber is formed at least partially by another part of the same cavity.
  4. 4. A unit as claimed in claim 3, wherein the spring chamber is additionally formed by part of a cavity in the other housing and the first damping chamber is formed by another part of that cavity.
  5. 5. A unit as claimed in any one of the preceding claims, wherein the piston is arranged to separate the spring chamber from the first damping chamber and is movable to reduce the volume of the first damping chamber for displacement of fluid therefrom.
  6. 6. A unit as claimed in any one of the preceding claims, wherein the second damping chamber is annular.
  7. 7. A unit as claimed in claim 6, wherein the second damping chamber is radially bounded by two substantially concentric circumferential wall portions respectively of the two housings.
  8. 8. A unit as claimed in claim 7, wherein the second damping chamber is axially bounded by two oppositely directed projections each provided at a respective one of the wall portions.
  9. 9. A unit as claimed in claim 8, wherein the projection provided at each wall portion comprises sealing means providing a seal relative to the respective other wall portion.
  10. 10. A unit as claimed in claim 9, wherein the damping fluid is a liquid and the sealing means are subject to lubrication by the liquid in the second damping chamber during movement of the housings apart.
  11. 11. A spring and damper unit comprising two telescopically movable housings each having a cavity enclosed by a respective one of two substantially coaxial and radially spaced circumferential walls, and a piston disposed in the cavity enclosed by an inner one of the walls to separate a spring chamber containing a gaseous medium which is compressible on movement of the housings together in a compression stroke thereof from a first damping chamber for a damping fluid which is displaceable therefrom during the compression stroke, the walls each being provided with a respective one of two oppositely directed projections which together with substantially concentric portions of the walls bound a second damping chamber for receiving the displaced fluid and which are movable towards another on movement of the housings apart in a rebound stroke thereof to cause a reduction in the volume of the second damping chamber for expulsion of fluid to be returned to the first damping chamber.
  12. 12. A unit as claimed in claim 11, wherein the first and second damping chambers have substantially the same area in cross-section of the cavities.
  13. 13. A unit as claimed in claim 11 or claim 12, wherein the spring chamber is formed by part of the cavity enclosed by an outer one of the walls and by part of the cavity enclosed by the inner one of the walls and the first damping chamber is formed by another part of the latter cavity.
  14. 14. A unit as claimed in any one of claims 11 to 13, wherein the projection provided at each of the walls comprises a seal sealingly contacting the respective other wall.
  15. 15. A unit as claimed in claim 14, wherein each of the seals is axially located in a groove.
  16. 16. A unit as claimed in any one of claims 11 to 15, wherein the inner one of the walls is provided with duct means for conveying hydraulic fluid between the damping chambers.
  17. 17. A unit as claimed in claim 16, wherein the inner one of the circumferential walls comprises two substantially concentric and radially spaced tubes, the duct means being formed in part by the space between the tubes.
  18. 18. A unit as claimed in claim 17, wherein the tubes are connected at one pair of associated ends thereof with a closure member and at the other pair of associated ends thereof with an annular piston member defining the respective one of the projections at its outer circumference, the annular piston member being effective to simultaneously and reciprocally vary the volumes of the spring chamber and the second damping chamber during movement of the housings together and apart.
  19. 19. A unit as claimed in claim 18, wherein the outer one of the tubes is threadedly connected with and the inner one of the tubes clamped between the closure member and the annular piston member.
  20. 20. A unit as claimed in any one of claims 17 to 19, wherein the outer one of the walls comprises a further tube which is partly concentric with and radially outwardly spaced from the outer tube of the inner one of the walls and which is provided at one end with the respective one of the projections.
  21. 21. A unit as claimed in claim 20, wherein the tube of the outer wall is threadedly connected at its other end with a closure member.
  22. 22. A unit as claimed in any one of the preceding claims, wherein the housings are respectively provided with attachment eyes at mutually remote ends thereof.
  23. 23. A unit as claimed in any one of the preceding claims, wherein the gaseous medium is air.
  24. 24. A spring and damping unit substantially as hereinbefore described with reference to the accompanying drawings.
    24. A unit as claimed in any one of the preceding claims, wherein the damping fluid is hydraulicoil.
    25. A spring and damping unit substantially as hereinbefore described with reference to the accompanying drawings.
    Amendments to the claims have been filed as follows CLAIMS 1. A spring and damper unit comprising two telescopically movable housings containing a spring chamber for a gaseous medium which is compressible on movement of the housings together in a compression stroke thereof, a first damping chamber for a damping fluid which is displaceable therefrom by a piston during the compression stroke and a second damping chamber for receiving the displaced fluid and returning the fluid to the first damping chamber on movement of the housings apart in a rebound stroke thereof, the piston being arranged to separate the spring chamber from the first damping chamber and being movable to reduce the volume of the first damping chamber for said displacement of fluid therefrom and the second damping chamber being so arranged between the housings that movement of the housings apart causes a reduction in the volume of the second damping chamber for expulsion of fluid to be returned to the first damping chamber.
    2. A unit as claimed in claim 1, wherein the first and second damping chambers have substantially the same area in cross-section transversely to the directions of movement of the housings in the compression and rebound strokes.
    3. A unit as claimed in claim 1 or claim 2, wherein the second damping chamber is formed by part of a cavity in one of the housings and the spring chamber is formed at least partially by another part of the same cavity.
    4. A unit as claimed in claim 3, wherein the spring chamber is additionally formed by part of a cavity in the other housing and the first damping chamber is formed by another part of that cavity.
    5. A unit as claimed in any one of the preceding claims, wherein the second damping chamber is annular.
    6. A unit as claimed in claim 5, wherein the second damping chamber is radially bounded by two substantially concentric circumferential wall portions respectively of the two housings. 7. A unit as claimed in claim 6, wherein the second damping chamber is axially bounded by two oppositely directed projections each provided at a respective one of the wall portions.
    8. A unit as claimed in claim 7, wherein the projection provided at each wall portion comprises sealing means providing a seal relative to the respective other wall portion.
    9. A unit as claimed in claim 8, wherein the damping fluid is a liquid and the sealing means are subject to lubrication by the liquid in the second damping chamber during movement of the housings apart.
    10. A spring and damper unit comprising two telescopically movable housings each having a cavity enclosed by a respective one of two substantially coaxial and radially spaced circumferential walls, and a piston disposed in the cavity enclosed by an inner one of the walls to separate a spring chamber containing a gaseous medium which is compressible on movement of the housings together in a compression stroke thereof from a first damping chamber for a damping fluid which is displaceable therefrom during the compression stroke by movement of the piston to reduce the volume of the first damping chamber, the walls each being provided with a respective one of two oppositely directed projections which together with substantially concentric portions of the walls bound a second damping chamber for receiving the displaced fluid and which are movable towards another on movement of the housings apart in a rebound stroke thereof to cause a reduction in the volume of the second damping chamber for expulsion of fluid to be returned to the first damping chamber.
    11. A unit as claimed in claim 10, wherein the first and second damping chambers have substantially the same area in cross-section of the cavities.
    12. A unit as claimed in claim 10 or claim 11, wherein the spring chamber is formed by part of the cavity enclosed by an outer one of the walls and by part of the cavity enclosed by the inner one of the walls and the first damping chamber is formed by another part of the latter cavity.
    13. A unit as claimed in any one of claims 10 to 12, wherein the projection provided at each of the walls comprises a seal sealingly contacting the respective other wall.
    14. A unit as claimed in claim 13, wherein each of the seals is axially located in a groove.
    15. A unit as claimed in any one of claims 10 to 14, wherein the inner one of the walls is provided with duct means for conveying hydraulic fluid between the damping chambers.
    16. A unit as claimed in claim 15, wherein the inner one of the circumferential walls comprises two substantially concentric and radially spaced tubes, the duct means being formed in part by the space between the tubes.
    17. A unit as claimed in claim 16, wherein the tubes are connected at one pair of associated ends thereof with a closure member and at the other pair of associated ends thereof with an annular piston member defining the respective one of the projections at its outer circumference, the annular piston member being effective to simultaneously and reciprocally vary the volumes of the spring chamber and the second damping chamber during movement of the housings together and apart.
    18. A unit as claimed in claim 17, wherein the outer one of the tubes is threadedly connected with and the inner one of the tubes clamped between the closure member and the annular piston member.
    19. A unit as claimed in any one of claims 16 to 18, wherein the outer one of the walls comprises a further tube which is partly concentric with and radially outwardly spaced from the outer tube of the inner one of the walls and which is provided at one end with the respective one of the projections.
    20. A unit as claimed in claim 19, wherein the tube of the outer wall is threadedly connected at its other end with a closure member.
    21. A unit as claimed in any one of the preceding claims, wherein the housings are respectively provided with attachment eyes at mutually remote ends thereof.
    22. A unit as claimed in any one of the preceding claims, wherein the gaseous medium is air.
    23. A unit as claimed in any one of the preceding claims, wherein the damping fluid is hydraulicoil.
GB9903248A 1999-02-12 1999-02-12 Spring and damper unit Expired - Fee Related GB2346666B (en)

Priority Applications (6)

Application Number Priority Date Filing Date Title
GB9903248A GB2346666B (en) 1999-02-12 1999-02-12 Spring and damper unit
AU23081/00A AU2308100A (en) 1999-02-12 2000-02-04 Spring and damper unit
EP00901782A EP1153228B1 (en) 1999-02-12 2000-02-04 Spring and damper unit
DE60004329T DE60004329T2 (en) 1999-02-12 2000-02-04 SPRING-DAMPER UNIT
AT00901782T ATE246775T1 (en) 1999-02-12 2000-02-04 SPRING-DAMPER UNIT
PCT/GB2000/000327 WO2000047912A1 (en) 1999-02-12 2000-02-04 Spring and damper unit

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
GB9903248A GB2346666B (en) 1999-02-12 1999-02-12 Spring and damper unit

Publications (3)

Publication Number Publication Date
GB9903248D0 GB9903248D0 (en) 1999-04-07
GB2346666A true GB2346666A (en) 2000-08-16
GB2346666B GB2346666B (en) 2000-12-20

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Family Applications (1)

Application Number Title Priority Date Filing Date
GB9903248A Expired - Fee Related GB2346666B (en) 1999-02-12 1999-02-12 Spring and damper unit

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GB (1) GB2346666B (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
ITUA20163720A1 (en) * 2016-05-24 2017-11-24 Bitubo S R L ADJUSTABLE SHOCK ABSORBER

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN114404100B (en) * 2022-02-24 2022-07-08 河南工学院 Damping component and portable animal doctor inspection mount

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB835413A (en) * 1955-06-15 1960-05-18 Brevets J A Gregoire Soc D Improvements in suspensions of vehicles
GB899480A (en) * 1959-10-08 1962-06-20 Ustav Pro Vyzkum Motorovych Vo An hydropneumatic suspension device
GB1317749A (en) * 1969-07-17 1973-05-23 Tokico Ltd Vehicle suspension mechanism
GB1412409A (en) * 1971-12-17 1975-11-05 Short Brothers & Harland Ltd Shock isolators
GB1492697A (en) * 1974-03-14 1977-11-23 Peugeot Suspension device
US4899853A (en) * 1987-11-28 1990-02-13 Herman Hemscheidt Maschinenfabrik Gmbh & Co. Hydraulic shock-absorber and vibration damper with an inner tube

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB835413A (en) * 1955-06-15 1960-05-18 Brevets J A Gregoire Soc D Improvements in suspensions of vehicles
GB899480A (en) * 1959-10-08 1962-06-20 Ustav Pro Vyzkum Motorovych Vo An hydropneumatic suspension device
GB1317749A (en) * 1969-07-17 1973-05-23 Tokico Ltd Vehicle suspension mechanism
GB1412409A (en) * 1971-12-17 1975-11-05 Short Brothers & Harland Ltd Shock isolators
GB1492697A (en) * 1974-03-14 1977-11-23 Peugeot Suspension device
US4899853A (en) * 1987-11-28 1990-02-13 Herman Hemscheidt Maschinenfabrik Gmbh & Co. Hydraulic shock-absorber and vibration damper with an inner tube

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
ITUA20163720A1 (en) * 2016-05-24 2017-11-24 Bitubo S R L ADJUSTABLE SHOCK ABSORBER

Also Published As

Publication number Publication date
GB2346666B (en) 2000-12-20
GB9903248D0 (en) 1999-04-07

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Effective date: 20060212