WO2016126776A1 - Secondary dampening assembly for shock absorber - Google Patents

Secondary dampening assembly for shock absorber Download PDF

Info

Publication number
WO2016126776A1
WO2016126776A1 PCT/US2016/016296 US2016016296W WO2016126776A1 WO 2016126776 A1 WO2016126776 A1 WO 2016126776A1 US 2016016296 W US2016016296 W US 2016016296W WO 2016126776 A1 WO2016126776 A1 WO 2016126776A1
Authority
WO
WIPO (PCT)
Prior art keywords
hydraulic stop
assembly
piston
stop sleeve
flow
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.)
Ceased
Application number
PCT/US2016/016296
Other languages
French (fr)
Inventor
Frederik BALDONI
Etienne LERUTH
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.)
Tenneco Automotive Operating Co Inc
Original Assignee
Tenneco Automotive Operating Co Inc
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 Tenneco Automotive Operating Co Inc filed Critical Tenneco Automotive Operating Co Inc
Priority to DE112016000579.2T priority Critical patent/DE112016000579B4/en
Priority to CN201680007419.7A priority patent/CN107208726B/en
Publication of WO2016126776A1 publication Critical patent/WO2016126776A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

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
    • F16F9/32Details
    • F16F9/48Arrangements for providing different damping effects at different parts of the stroke
    • 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
    • F16F9/10Springs, vibration-dampers, shock-absorbers, or similarly-constructed movement-dampers using a fluid or the equivalent as damping medium using liquid only; using a fluid of which the nature is immaterial
    • F16F9/14Devices with one or more members, e.g. pistons, vanes, moving to and fro in chambers and using throttling effect
    • F16F9/16Devices with one or more members, e.g. pistons, vanes, moving to and fro in chambers and using throttling effect involving only straight-line movement of the effective parts
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60GVEHICLE SUSPENSION ARRANGEMENTS
    • B60G13/00Resilient suspensions characterised by arrangement, location or type of vibration dampers
    • B60G13/02Resilient suspensions characterised by arrangement, location or type of vibration dampers having dampers dissipating energy, e.g. frictionally
    • B60G13/06Resilient suspensions characterised by arrangement, location or type of vibration dampers having dampers dissipating energy, e.g. frictionally of fluid type
    • B60G13/08Resilient suspensions characterised by arrangement, location or type of vibration dampers having dampers dissipating energy, e.g. frictionally of fluid type hydraulic
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60GVEHICLE SUSPENSION ARRANGEMENTS
    • B60G15/00Resilient suspensions characterised by arrangement, location or type of combined spring and vibration damper, e.g. telescopic type
    • B60G15/02Resilient suspensions characterised by arrangement, location or type of combined spring and vibration damper, e.g. telescopic type having mechanical spring
    • B60G15/06Resilient suspensions characterised by arrangement, location or type of combined spring and vibration damper, e.g. telescopic type having mechanical spring and fluid damper
    • B60G15/062Resilient suspensions characterised by arrangement, location or type of combined spring and vibration damper, e.g. telescopic type having mechanical spring and fluid damper the spring being arranged around the damper
    • 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
    • F16F9/10Springs, vibration-dampers, shock-absorbers, or similarly-constructed movement-dampers using a fluid or the equivalent as damping medium using liquid only; using a fluid of which the nature is immaterial
    • F16F9/14Devices with one or more members, e.g. pistons, vanes, moving to and fro in chambers and using throttling effect
    • F16F9/16Devices with one or more members, e.g. pistons, vanes, moving to and fro in chambers and using throttling effect involving only straight-line movement of the effective parts
    • F16F9/165Devices with one or more members, e.g. pistons, vanes, moving to and fro in chambers and using throttling effect involving only straight-line movement of the effective parts with two or more cylinders in line, i.e. in series connection
    • 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
    • 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
    • F16F9/48Arrangements for providing different damping effects at different parts of the stroke
    • F16F9/49Stops limiting fluid passage, e.g. hydraulic stops or elastomeric elements inside the cylinder which contribute to changes in fluid damping
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60GVEHICLE SUSPENSION ARRANGEMENTS
    • B60G2200/00Indexing codes relating to suspension types
    • B60G2200/10Independent suspensions
    • B60G2200/14Independent suspensions with lateral arms
    • B60G2200/142Independent suspensions with lateral arms with a single lateral arm, e.g. MacPherson type
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60GVEHICLE SUSPENSION ARRANGEMENTS
    • B60G2202/00Indexing codes relating to the type of spring, damper or actuator
    • B60G2202/20Type of damper
    • B60G2202/24Fluid damper
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60GVEHICLE SUSPENSION ARRANGEMENTS
    • B60G2202/00Indexing codes relating to the type of spring, damper or actuator
    • B60G2202/30Spring/Damper and/or actuator Units
    • B60G2202/31Spring/Damper and/or actuator Units with the spring arranged around the damper, e.g. MacPherson strut
    • B60G2202/312The spring being a wound spring

Definitions

  • the present disclosure relates generally to shock absorbers having secondary dampening assemblies.
  • the present disclosure describes secondary dampening assemblies, such as lockout pistons and lockout collars, hydraulic stop pistons and hydraulic stop sleeves, flow discs and orifice plugs, and dual-spring stops.
  • Conventional shock absorbers known in the related art typically include an outer tube, a piston assembly, a rod, fluid, and one or more valves, whereby the piston assembly is connected to the rod and travels within fluid in the outer tube in operation so as to dampen axial movement of the rod with respect to the outer tube.
  • respective opposing ends of the rod and outer tube are attached to different members or structures so as to dampen movement therebetween.
  • conventional automotive suspension systems utilize shock absorbers in connection with springs extemal to the shock absorber to control the suspension dampening in compression and rebound, whereby the shock absorber is typically attached to a knuckle supporting a wheel at one end, and to a portion of the vehicle's frame or body at the other end.
  • the shock absorber may also include an inner tube disposed inside the outer tube, wherein the piston assembly is instead supported in the inner tube.
  • the shock absorber is sealed at an end that receives the piston assembly.
  • the inner tube defines a working chamber filled with fluid through which the piston assembly can move in operation.
  • the piston assembly generally divides the working chamber into an upper working chamber and a lower working chamber.
  • a reservoir chamber is defined in the space between the outer tube and the inner tube.
  • the reservoir chamber also contains fluid and is in regulated fluid communication with the working chamber via one or more valves.
  • the chambers are sealed to prevent the leakage of fluid therefrom.
  • the outer tube is typically manufactured from steel and, consequently, can be heavy. Since the outer tube is manufactured from steel, the end of the outer tube is sealed by known methods, such as crimping or roll forming.
  • the outer tube typically engages a rod guide assembly to seal the chambers.
  • shock absorber During normal shock absorber operation, the shock absorber is extended and compressed during vehicle wheel and body articulation. If the shock absorber is completely compressed during wheel or body articulation, a condition referred to as "bottoming out" occurs and causes an abrupt metal-to-metal noise. Further, the condition causes harsh feedback and/or vibrations that are felt by the driver.
  • a shock absorber having a secondary dampening assembly for absorbing and dissipating forces encountered when the shock absorber is operated.
  • the secondary dampening assembly includes a hydraulic stop piston and a hydraulic stop sleeve.
  • the hydraulic stop piston is carried by an extender with a gap defined radially between the hydraulic stop piston and the extender to allow radial movement.
  • the hydraulic stop sleeve has an open end for receiving the hydraulic stop piston and a flow groove that extends longitudinally along an inner surface of the hydraulic stop sleeve.
  • Figure 1 is an enlarged perspective view of a generic vehicle showing a conventional suspension system
  • Figure 2 is a partial sectional side view of a corner assembly of the suspension system of Figure 1 having a conventional shock absorber;
  • Figure 3 is a partial sectional side view of a corner assembly of the suspension system of Figure 1 having a shock absorber having a secondary dampening assembly;
  • Figure 4 is a partial, cross-sectional view of a shock absorber having a secondary dampening assembly according to one embodiment of the subject invention
  • Figure 5 is a partial, perspective top-down view and bottom-up view of a hydraulic stop piston shown in Figure 4;
  • Figure 6 is a top-down perspective view of a hydraulic stop sleeve shown in Figure 4.
  • Figure 7 is a perspective, cross-sectional view of an embodiment of the hydraulic stop sleeve
  • Figure 8 is a perspective, cross-sectional view of another embodiment of the hydraulic stop sleeve.
  • Figure 9 is a perspective, cross-sectional view of yet another embodiment of the hydraulic stop sleeve.
  • Figure 10 is a cross-sectional view of an embodiment of the hydraulic stop piston having a flow passage
  • Figure 11 is a cross-sectional view of another embodiment of the hydraulic stop piston having a flow passage
  • Figure 12 is a cross-sectional view of another embodiment of the hydraulic stop piston having a first and a second flow passage
  • Figure 13 is a partial, cross-sectional view of a shock absorber according to another embodiment of the subject invention.
  • Figure 14 is a side-view of a hydraulic stop piston and hydraulic stop sleeve shown in Figure 13;
  • Figure 15 is a partial, cross-sectional view of a shock absorber according to yet another embodiment of the subject invention.
  • Figure 16 is a bottom-up, side perspective view of the hydraulic stop piston shown in Figure 15;
  • Figure 17 is a partial, cross-sectional view of a secondary dampening assembly according to a further embodiment of the subject invention.
  • Figure 18 is a partial, cross-sectional view of a secondary dampening assembly to yet a further embodiment of the subject invention.
  • Figure 19 is a graph of force versus deflection characteristics according to the embodiment shown in Figure 18;
  • Figure 20 is a partial, cross-sectional view of a shock absorber according to another embodiment of the subject invention.
  • Figure 21 is a partial, cross-sectional view of a shock absorber comprising a lockout piston and a lockout collar according to one embodiment of the subject invention;
  • Figure 22 is a close-up, side-view of the lockout piston shown in Figure 21 ;
  • Figure 23 is a partial, cross-sectional view of the lockout piston and lockout collar
  • Figure 24 is a partial, cross-sectional view of a shock absorber according to another embodiment of the subject invention.
  • Figure 25 is a close-up, side-view of another embodiment of the lockout collar shown in Figure 24.
  • the vehicle 10 includes a body 12 operatively attached to a suspension system 14 defined by four corner assemblies 16.
  • the corner assemblies 16 are each assigned to a rotatably supported wheel 18 and are used to control the relative motion between the vehicle body 12 and wheel 18.
  • the comer assemblies 16 each typically include strut assemblies 20 that include a spring 22 to help absorb impacts and a shock absorber 24 to help control motion of the spring 22 by dampening movement between the wheel 18 and vehicle body 12.
  • the springs 22 are compression springs and can be either concentrically aligned around the shock absorber 24, or spaced from the shock absorber 24.
  • the shock absorber 24 of the present invention can be used in connection with any suitable type of spring 22 without departing from the scope of the present invention.
  • any suitable number of shock absorbers 24 could be used with any suitable number of springs 22.
  • the shock absorber 24 of the present invention is not limited for use in automotive applications, and could be used in any suitable application without departing from the scope of the present invention.
  • FIG. 2 a partial sectional view of the conventional corner assembly 16 is shown for exemplary purposes.
  • strut assembly 20 depicted in Figure 2 as a MacPherson strut system, which includes the shock absorber 24 used to control movement between the vehicle body 12 and wheel 18 (not shown in Figure 2).
  • the shock absorber 24 is typically mounted between a top mount assembly, generally indicated at 26, and a knuckle 28.
  • the top mount assembly 26 mounts to the body 12 of the vehicle 10 and helps support the spring 22.
  • An upper spring seat 30 is adj acent the top mount assembly 26 and a lower spring seat 52 receives the spring 22.
  • the knuckle 28 typically includes a rotatably supported hub and bearing assembly 32, to which the wheel 18 is operatively attached.
  • the knuckle 28 is also typically connected to a ball j oint 34 mounted to a lower control arm 36 which, in turn, is pivotally supported by a frame member 38 of the vehicle 10.
  • a continuously- variable j oint member 40 translates rotational torque from the vehicle transmission (not shown, but generally known in the art) to the wheel 18 via the hub and bearing assembly 32.
  • the wheel 18 can rotate in operation to drive the vehicle 10, and the suspension system 14 described above absorbs impacts and allows the wheel 18 to move with respect to the body 12.
  • the shock absorber 24 shown in Figure 2 is a standard single-walled shock absorber and generally includes a base assembly 42 and a rod 44 concentrically - aligned with and supported within the base assembly 42 as described in greater detail below.
  • the rod 44 typically includes a stepped and/or threaded upper end 46 adapted to secure the shock absorber 24 to the top mount assembly 26.
  • the shock absorber 24 could be operatively attached to the top mount assembly 26, or to any suitable portion of the vehicle 10, or to any suitable member irrespective of the application, in any suitable way, without departing from the scope of the present invention.
  • the base assembly 42 has a mounting portion 48 adapted to attach the shock absorber 24 to the knuckle 28. While the base assembly 42 depicted in Figure 2 is attached to the knuckle 28 with two bolts 50, those having ordinary skill in the art will appreciate that the base assembly 42 of the shock absorber 24 could be operatively attached to any suitable portion of the vehicle 10, or to any suitable member, in any suitable way, without departing from the scope of the present invention.
  • Figure 3 is a partial, cross-sectional view of the shock absorber 24 according to one embodiment of the subject invention which has a secondary dampening assembly shown generally at 80.
  • the secondary dampening assembly 80 disposed within the base assembly 42 includes an extender 104 coupled to a second end 58 of the rod 44, a hydraulic stop piston 106 is carried by the extender 104, and a hydraulic stop sleeve 108.
  • the hydraulic stop sleeve 108 has an open end 111 for receiving the hydraulic stop piston 106 and a closed end 112 and defines a non-tapered bore 82 shaped to receive the hydraulic stop piston 106.
  • the hydraulic stop piston 106 has a diameter less than a diameter of the pressure tube 56. In this manner, as the rod 44 is moved up and down, the hydraulic stop piston 106 does not slide along the extender 104.
  • the shock absorber 24 includes an inner pressure assembly 54 and the base assembly 42.
  • the inner pressure assembly 54 and base assembly 42 cooperate, as described in greater detail below, to define a "double tube" shock absorber 24.
  • the base assembly 42 may be further described as an outer cylinder, wherein the base assembly 42 defines a chamber 138 for at least partially accommodating the inner pressure assembly 54 therein and the chamber 138 terminates at a floor 140.
  • the inner pressure assembly 54 includes a pressure tube 56, a rod guide 72 (shown in Figure 3), a compression valve assembly 74, a piston assembly 60, and the rod 44 discussed above.
  • FIG. 4 a partial, cross-sectional view of the shock absorber 24 according to one embodiment of the subject invention and having the secondary dampening assembly 80 is shown.
  • the pressure tube 56 extends between an upper end and a lower end and the rod guide 72 is disposed adjacent the upper end of the pressure tube 56.
  • the compression valve assembly 74 is disposed adjacent to the lower end of the pressure tube 56.
  • the piston assembly 60 is disposed in the pressure tube between the rod guide 72 and the secondary dampening assembly 80.
  • the rod 44 is operatively attached to the piston assembly 60 and has the first, upper end 46 supported by the rod guide 72 so as to concentrically align the rod 44 with the pressure tube 56 and the second, lower end 58 disposed within the pressure tube 56.
  • piston assemblies 60 and compression valve assemblies 74 may be used with the subject invention without departing therefrom.
  • Examples of such piston assemblies 60 and compression valve assemblies 74 are disclosed in United States Patent Nos. 8,590,678 or 8,714,320, both assigned to Tenneco Automotive Operating Company Inc., which are incorporated herein by reference.
  • the extender 104 is coupled to the second end 58 of the rod 44, the hydraulic stop piston 106 is carried by the extender 104, and the hydraulic stop sleeve 108 is disposed within the pressure tube 56.
  • the extender 104 is shaped to receive and secure the hydraulic stop piston 106 relative to the extender 104.
  • the hydraulic stop piston 106 has a diameter less than a diameter of the pressure tube 56.
  • the hydraulic stop piston 106 of Figure 4 is carried by the extender 104, and a gap 1 13 is defined radially between the hydraulic stop piston 106 and the extender 104 to allow radial movement.
  • the gap 1 13 is typically a fraction of a mm thick.
  • the gap 1 13 has a thickness of from about 0.5 to about 0.01, alternatively from about 0.4 to about 0.05, mm.
  • the hydraulic stop piston 106 can move radially which allows for smooth entry of the hydraulic stop piston 106 into the hydraulic stop sleeve 108 upon compression and a smooth exit of the hydraulic stop piston 106 out of the hydraulic stop sleeve 108 upon rebound.
  • the extender 104 can move radially which facilitates smooth movement of the hydraulic stop piston 106 and operation of the secondary dampening assembly 80.
  • the gap 113 allows for radial/latitudinal movement of the hydraulic stop piston 106 which, in-tum, allows for smooth entry of the hydraulic stop piston 106 into the hydraulic stop sleeve 108 upon compression, as well as smooth movement of the hydraulic stop piston 106 in the hydraulic stop sleeve 108, and a smooth exit of the hydraulic stop piston 106 out of the hydraulic stop sleeve 108 upon rebound.
  • the hydraulic stop sleeve 108 is disposed within the pressure tube 56 such that the hydraulic stop sleeve engages the pressure tube 56.
  • the hydraulic stop sleeve 108 has open end 1 11 for receiving the hydraulic stop piston 106 and defines a non-tapered bore 82 shaped to receive the hydraulic stop piston 106.
  • the hydraulic stop sleeve 108 has a closed end 112.
  • a flange 118 supports the hydraulic stop sleeve 108 above the compression valve assembly 74.
  • Figure 5 is a partial, perspective top-down view and bottom-up view of the hydraulic stop piston 106 shown in Figure 4.
  • the hydraulic stop piston 106 of Figure 5 includes at least one flow passage 110 extending through the hydraulic stop piston 106 to allow for fluid flow.
  • the hydraulic stop piston 106 of Figure 5 includes at least one flow passage 110
  • various embodiments of the hydraulic stop piston 106 of the secondary dampening assembly 80 of the subject disclosure do not include at least one flow passage 110 extending through the hydraulic stop piston 106 to allow for fluid flow.
  • the nut 122 is secured to the extender 104, and an intake disc 124 and an intake spring 125 are disposed between the nut 122 and the hydraulic stop piston 106.
  • the intake disc 124 is adjacent to the hydraulic stop piston 106, and the intake spring 125 is disposed adjacent to the nut 122.
  • the nut 122 acts as a stop for the intake spring 125.
  • the nut 122 does not secure the hydraulic stop piston 106 to the extender 104.
  • Figure 6 is a top-down perspective view of the hydraulic stop sleeve 108 shown in Figure 4.
  • the hydraulic stop sleeve 108 of Figure 6 has the open end 111 for receiving the hydraulic stop piston 106 and defines the non-tapered bore 82 shaped to receive the hydraulic stop piston 106.
  • the bore 82 is not tapered, e.g. does not progressively narrow to provide increased fluidic resistance.
  • the hydraulic stop sleeve 108 has at least one flow groove 116 extending longitudinally along an inner surface 109 of the hydraulic stop sleeve 108.
  • a flange 118 extends about the open end 111 for locating the hydraulic stop sleeve 108 within the pressure tube 56.
  • the flange 118 has a plurality of slots 120 for allowing fluid to flow through.
  • the hydraulic stop sleeve 108 has a flow groove 116 extending longitudinally along the inner surface 109 of the hydraulic stop sleeve 108.
  • the hydraulic stop sleeve 108 has the flow groove 116, more specifically, a plurality of the flow grooves 116, 4 to be exact, extending longitudinally along the inner surface 109 of the hydraulic stop sleeve 108, and the hydraulic stop piston 106 does not have the flow groove 116 extending longitudinally along the outer surface 107 of the hydraulic stop piston 106.
  • At least one of the flow grooves 1 16 is included on the inner surface 109 of the hydraulic stop sleeve 108.
  • a plurality of the flow grooves 1 16 can be included on the inner surface 109 of the hydraulic stop sleeve 108.
  • 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 1 1, 12, or more flow grooves 116 can be included on the inner surface 109 of the hydraulic stop sleeve 108.
  • the plurality can be further defined as a range comprising any number of flow grooves 1 16 above, e.g. from 2 to 12 or from 2 to 6.
  • the at least one flow groove 1 16 included on the hydraulic stop sleeve 108 can be part of a continuous number (e.g. a pattern) of flow grooves 116 formed on the inner surface 109 of the hydraulic stop sleeve 108.
  • the hydraulic stop piston 106 may also have at least one flow groove 1 16 extending longitudinally along an outer surface 107 of the hydraulic stop piston 106. If one or more flow grooves 1 16 is included on the hydraulic stop piston 106, the flow groove(s) 1 16 can be distinguished from the flow passage 1 10 of the hydraulic stop piston 106 (if included) in that the flow groove 1 16 is cut into the outer surface 107 of the hydraulic stop piston 106 while the flow passage 110 extends through the hydraulic stop piston 106.
  • the flow groove 1 16 can define various geometries.
  • the flow grooves 116 define a semi-circular geometry. In other embodiments, the flow grooves 1 16 define a triangular or even square geometry. If more than one flow groove 116 is included, the flow grooves 116 included can define the same geometry or the flow grooves 1 16 included can define different geometries.
  • the flow groove 116 can be of various sizes, and if more than one flow groove 1 16 is included, the flow grooves 116 included can have the same size or the flow grooves 1 16 included can have different sizes.
  • the geometry, the size, the location, and the number of flow grooves 1 16 included on the hydraulic stop sleeve 108 can be varied to change the amount of dampening provided by the secondary dampening assembly 80.
  • the flow grove 1 16 is tapered to increase resistance as the hydraulic stop piston 106 moves into the hydraulic stop sleeve 108.
  • a hydraulic stop sleeve 108 having 2 tapered flow grooves 1 16 is shown in Figure 7.
  • the tapered flow grooves 116 do not extend longitudinally from the open end 111 towards the closed end 112 of the hydraulic stop sleeve 108 for a total length of the hydraulic stop sleeve 108.
  • the flow grooves 116 extend longitudinally from the open end 111 towards the closed end 112 of the hydraulic stop sleeve 108 a length of from about 70 to about 95, alternatively from about 85 to about 95, % of the total length of the hydraulic stop sleeve 108, but do not extend the total length of the hydraulic stop sleeve 108.
  • one or more of the flow grooves 116 extend longitudinally from the open end 111 towards the closed end 112 of the hydraulic stop sleeve 108 the total length of the hydraulic stop sleeve 108.
  • a plurality of flow grooves 116 are included on the hydraulic stop sleeve 108 and a combination of tapered and non-tapered flow grooves 116 are included.
  • Non-tapered flow grooves 116 have a uniform geometry or profile to provide consistent resistance as the hydraulic stop piston 106 moves into the hydraulic stop sleeve 108.
  • the hydraulic stop sleeve 108 can include a plurality of flow grooves 116 extending longitudinally and having different lengths along the inner surface 109 of the hydraulic stop sleeve 108.
  • the plurality of flow grooves 116 extending longitudinally and having different lengths can be tapered, non-tapered, or a combination thereof.
  • the hydraulic stop sleeve 108 includes four flow grooves 116, a first flow groove 116a extending longitudinally from the open end 111 towards the closed end 112 of the hydraulic stop sleeve 108 and having a length of about 25% of the length of the inner surface 109 of the hydraulic stop sleeve 108, i.e., starting at the open end 111 of the hydraulic stop sleeve 108 and extending about one- quarter of the length of the inner surface 109 of the hydraulic stop sleeve 108, a second flow groove 116b extending longitudinally from the open end 111 towards the closed end 112 of the hydraulic stop sleeve 108 and having a length of about 45% of the length of the inner surface 109 of the hydraulic stop sleeve 108, a third flow groove 116c extending longitudinally from the open end 111 towards the closed end 112 of the hydraulic stop sleeve 108 and having a length
  • the hydraulic stop sleeve 108 can have a plurality of flow grooves 1 16, all flow grooves 116 having different lengths (as is shown in Figure 8).
  • the hydraulic stop sleeve 108 can have a plurality of flow grooves 1 16, some of the flow grooves 116 having the same length and other flow grooves 116 having different lengths.
  • the hydraulic stop sleeve 108 can include the plurality of flow grooves 1 16 extending longitudinally wherein the flow grooves 116 comprise a plurality of holes 1 17 which are drilled into the hydraulic stop sleeve 108. The holes 117 of such are drilled latitudinally into the hydraulic stop sleeve 108.
  • a fluid e.g. oil
  • flow grooves 116 comprising various arrangements of holes 117, drilled latitudinally into the hydraulic stop sleeve 108 can be utilized to achieve the dampening profile desired in the secondary dampening assembly 80.
  • the hydraulic stop sleeve 108 includes the flow groove
  • the hydraulic stop sleeve 108 includes the flow groove 1 16 comprising a helical plurality of holes 117, as is shown in Figure 9.
  • the size and the number of holes 1 17 included in such embodiments can vary. In some embodiments, of from about 2 to about 10, alternatively from about 2 to about 6, holes 117 are included in the hydraulic stop sleeve 108.
  • the holes 1 17 are drilled latitudinally into the hydraulic stop sleeve 108. In the embodiment of Figure 9, the amount of holes does not have to decrease along the length to provide an increasing resistance. If there are 5 holes 117 distributed over the length of the hydraulic stop sleeve 108, as is shown in Figure 9, when the hydraulic stop piston 106 enters the hydraulic stop sleeve 108, the 5 holes
  • an amount of holes 1 17 progressively decreases along the length of the hydraulic stop sleeve 108 so that resistance increases as the hydraulic stop piston 106 enters the hydraulic stop sleeve 108.
  • the amount of holes 1 17 does not have to decrease along the length of the hydraulic stop sleeve 108 to provide increasing resistance.
  • the hydraulic stop sleeve 108 has the closed end 112 and the open end 11 1.
  • the flange 1 18 supports the hydraulic stop sleeve 108 above the compression valve assembly 74.
  • the gap 1 13 between the hydraulic stop piston 106 and the extender 104 allows for a small amount of radial/latitudinal movement (radial free play) to facilitate a smooth movement of the hydraulic stop piston 106 as it enters the hydraulic stop sleeve 108, moves in the hydraulic stop sleeve 108, and exits the hydraulic stop sleeve 108.
  • the interior surface 109 at the open end of the hydraulic stop sleeve 108 can be beveled (not shown), or the flange 118 can have a chamfer (not shown) which can further facilitate a smooth entry of the hydraulic stop piston 106 into the hydraulic stop sleeve 108.
  • the hydraulic stop piston 106 enters the hydraulic stop sleeve 108 the fluid chamber 1 14 in the hydraulic stop sleeve 108 is closed and all remaining fluid needs to pass via the flow groove 116 in the hydraulic stop sleeve 108.
  • the dampening generated by this is additional, and/or secondary, to the main dampening, causing more energy anticipation at compressed position.
  • the hydraulic stop piston 106 of Figure 5 includes at least one flow passage 1 10 extending through the hydraulic stop piston 106 to allow for fluid flow.
  • the hydraulic stop piston 106 of Figure 5 includes at least one flow passage 1 10
  • various embodiments of the hydraulic stop piston 106 of the secondary dampening assembly 80 of the subject disclosure do not include at least one flow passage 1 10 extending through the hydraulic stop piston 106 to allow for fluid flow.
  • the nut 122 is secured to the extender 104, and the intake disc 124 and an intake spring 125 are disposed between the nut 122 and the hydraulic stop piston 106.
  • the intake disc 124 of the hydraulic stop piston 106 of the secondary dampening assembly 80 of the shock absorber 24 disclosed herein is in a closed position when the hydraulic stop piston 106 moves into the hydraulic stop sleeve 108 and is in an open position when the hydraulic stop piston 106 moves out of the hydraulic stop sleeve 108.
  • the intake disc 124 of the hydraulic stop piston 106 when the intake disc 124 of the hydraulic stop piston 106 is in the closed position, the intake disc 124 fully covers the at least one flow passage 1 10 extending through the hydraulic stop piston 106; therefore, the fluid chamber 114 in the hydraulic stop sleeve 108 is fully closed, and fluid which is being compressed in the hydraulic stop sleeve 108 must flow out of the hydraulic stop sleeve 108 via the at least one flow groove 116.
  • the intake disc 124 is pressed onto a bottom surface of the hydraulic stop piston 106 when the hydraulic stop piston 106 is moving into the hydraulic stop sleeve 108 (i.e., the intake disc 124 is in a closed position) and, thus, fluid is prevented from flowing through the at least one flow passage 110 of the hydraulic stop piston 106 and the fluid must flow through the at least one flow groove 1 16 to relieve the hydraulic pressure in the hydraulic stop sleeve 108 which causes a dampening effect.
  • Figure 10 an enlarged cross-sectional view of the hydraulic stop piston 106 of Figures 4 and 5 is shown.
  • the nut 122 is secured to the extender 104 and an intake disc 124 and an intake spring 125 are disposed between the nut 122 and the hydraulic stop piston 106.
  • the intake disc 124 is adjacent to hydraulic stop piston 106 and the intake spring 125 is disposed adjacent to the nut 122.
  • the intake disc 124 is pressed onto a bottom surface of the hydraulic stop piston 106 when the hydraulic stop piston 106 is moving into the hydraulic stop sleeve 108 (i.e., the intake disc 124 is in a closed position) and fluid is prevented from flowing through the at least one flow passage 110 of the hydraulic stop piston 106.
  • the intake disc 124 of the hydraulic stop piston 106 when the intake disc 124 of the hydraulic stop piston 106 is in the closed position, the intake disc 124 partially covers the at least one flow passage 1 10 extending through the hydraulic stop piston 106; therefore, the fluid chamber 114 in the hydraulic stop sleeve 108 is partially closed, and fluid which is being compressed in the hydraulic stop sleeve 108 must flow out of the hydraulic stop sleeve 108 via both the partially covered at least one flow passage 110 and the at least one flow groove 116.
  • the intake disc 124 is pressed onto a bottom surface of the hydraulic stop piston 106 when the hydraulic stop piston 106 is moving into the hydraulic stop sleeve 108 (i.e., the intake disc 124 is in a closed position) and, thus, fluid is restricted (but not prevented) from flowing through the at least one flow passage 110 of the hydraulic stop piston 106 and the fluid must flow through both the partially covered at least one flow passage 110 and the at least one flow groove 116 to relieve the hydraulic pressure in the hydraulic stop sleeve 108 which causes a dampening effect.
  • Figure 10 an enlarged cross-sectional view of an embodiment of the hydraulic stop piston 106 is shown.
  • the nut 122 is secured to the extender 104 and an orifice disc 123 (a plain disc with a notch on its outer diameter), an intake disc 124 and an intake spring 125 are disposed between the nut 122 and the hydraulic stop piston 106.
  • the orifice disc 123 is adjacent to the hydraulic stop piston 106 (i.e., is located between the intake disc 124 and the hydraulic stop piston 106), the intake disc 124 is adjacent to the intake spring 125, which is adjacent to the nut 122.
  • the orifice disc 123 is pressed onto a bottom surface of the hydraulic stop piston 106 when the hydraulic stop piston 106 is moving into the hydraulic stop sleeve 108 (i.e., the intake disc 124 is in a closed position) and fluid is restricted (but not prevented) from flowing through the at least one flow passage 110 of the hydraulic stop piston 106.
  • the intake disc 124 covers about 100% of the at least one flow passage 110 in the hydraulic stop piston 106 and, thus, completely limits the flow of fluid through the at least one flow passage 110 when the hydraulic stop piston 106 is moving into the hydraulic stop sleeve 108.
  • “partially covers the at least one flow passage 110” means that the intake disc 124 covers greater than about 90% of the at least one flow passage 110, alternatively greater than about 80% of the at least one flow passage 110, alternatively greater than about 70% of the at least one flow passage 110, alternatively greater than about 60% of the at least one flow passage 110, alternatively greater than about 50% of the at least one flow passage 110, alternatively greater than about 10% of the at least one flow passage 110, in the hydraulic stop piston 106 and, thus, partially limits the flow of fluid through the at least one flow passage 110 when the hydraulic stop piston 106 is moving into the hydraulic stop sleeve 108.
  • FIG 12 an enlarged cross-sectional view of an embodiment of the hydraulic stop piston 106 is shown.
  • the nut 122 is secured to the extender 104, and intake disc 124 and an intake spring 125 are disposed between the nut 122 and the hydraulic stop piston 106.
  • a disc stack 127 is adjacent to the hydraulic stop piston 106 (opposite to the intake disc 124).
  • two flow passages are shown: 1) a first flow passage HOr which creates a rebound path for the fluid when the hydraulic stop piston 106 is moving out of the hydraulic stop sleeve 108, i.e., upon rebound; and 2) a second flow passage 110c which creates a compression flow path for the fluid when the hydraulic stop piston 106 is moving into the hydraulic stop sleeve 108, i.e., upon compression.
  • the disc stack 127 can be tuned to create a "blow off characteristic at a specified pressure. More specifically, the disc stack 127 can be tuned by adjusting the landing area and the thicknesses of the discs. In this embodiment, the intake disc 124 and the intake spring 125 function as described above.
  • the first flow passage 11 functions as previously described herein allowing fluid to flow into the hydraulic stop sleeve as the 108 hydraulic stop piston 106 is moving out of the hydraulic stop sleeve 108.
  • the orifice disc 123 is pressed onto a bottom surface of the hydraulic stop piston 106 when the hydraulic stop piston 106 is moving into the hydraulic stop sleeve 108 (i.e., the intake disc 124 is in a closed position) and fluid is prevented (as shown) from flowing through the first flow passage 11 Or of the hydraulic stop piston 106 and the second flow passage 110c is open allowing the flow of fluid out of the hydraulic stop sleeve 108.
  • the second flow passage 110c is only active when the pressure in the hydraulic stop sleeve 108 below the hydraulic stop piston 106 exceeds a certain pressure level.
  • the certain pressure level is exceeded (as the hydraulic stop piston 106 is moving into the hydraulic stop sleeve 108)
  • the disc stack 127 will lift and fluid will flow through the second flow passage 110c.
  • the second flow passage 110c works in conjunction with flow groves 116 that are tapered.
  • the secondary dampening assembly 80 of the subject invention is shown in Figures 13 and 14, wherein the hydraulic stop sleeve 108 includes a terminal cup 126 sealing the closed end 112 of the hydraulic stop sleeve 108.
  • the terminal cup 126 supports the sleeve adjacent to the compression valve assembly 74.
  • the terminal cup 126 has a first sealing surface 130 for sealing the hydraulic stop sleeve 108 and a second sealing surface 132 for sealing the pressure tube 56.
  • the terminal cup 126 further defines terminal flow passages 134 for allowing fluid to flow therethrough.
  • the secondary dampening assembly 80 of the subject invention is shown in Figures 15 and 16.
  • the hydraulic stop piston 106 is secured to the extender 104 with a locking disc 136 and the hydraulic stop piston 106 does not have any flow passages 110.
  • the hydraulic stop piston 106 has a cross-shaped inner diameter (flow passage 110) which is defined by four flow grooves 116 and the locking disc 136 has a similarly corresponding cross- shape.
  • the hydraulic stop piston 106 can slide, which enables fluid to flow during the rebound stroke. More specifically, hydraulic stop piston 106 can move axially on the extender 104, so that it works as a check valve.
  • the secondary dampening assembly 180 includes an orifice plug 182 disposed within the lower working chamber.
  • the orifice plug 182 has an upper flow disc 184 and a lower flow disc 186 adjacent the orifice plug 182.
  • a sealing ring 188 is disposed in the orifice plug 182 to engage the inner pressure assembly 54.
  • a pair of Belleville washers 190, or discs springs, are located adjacent a bridge 66 with a frusto-conical shape opening away from one another.
  • a flat washer 192 is disposed above the Belleville washer 190 nearest the orifice plug 182.
  • a variable rate spring 194 is disposed between the lower flow disc 186 and the flat washer 192.
  • the secondary dampening assembly 280 includes the piston nut 196 secured to the second end 58 of the rod 44 and the piston nut 196 includes a support washer 281 extending therefrom.
  • the support washer 281 has a diameter less than the width of the inner pressure assembly 54 and has a first contact area 282 extending about the support washer 281.
  • the support washer 281 has a downwardly extending portion 284 that has a diameter less than the diameter of the support washer 281.
  • a compressible stop 286 is disposed adjacent the bridge 66 extending between the sides of the inner pressure assembly 54 and has a first height 288 and a second height 290 less than the first height 288.
  • the first height 288 is closest to the sides of the inner pressure assembly 54 and the second height 290 is nearer the center of the inner pressure assembly 54.
  • the compressible stop 286 can be any compressible material, such as urethane or foam material.
  • a first spring 292 has a narrow end 293 and a wide end 294 contacting the first height 288 of the compressible stop 286.
  • the wide end 294 has an outer diameter the same as the inner diameter of the inner pressure assembly 54 such that the first spring 292 is press-fit into the inner pressure assembly 54 while the wide end 294 rests against the compressible stop 286.
  • the narrow end 293 has a diameter that is less than the diameter of the support washer 281, but greater than the diameter of the portion 284.
  • a second spring 296 is located adjacent to the second height 290 of the compressible stop 286 such that the second spring 296 is press-fit against the step between the first and second heights 288, 290.
  • the second spring 296 has a diameter that will contact the downwardly extending portion 284.
  • the support washer 281 contacts the narrow end 293 of the first spring 292 providing a first dampening characteristic.
  • the downwardly extending portion 284 contacts the second spring 296 providing a second dampening characteristic.
  • the compressible stop 286 may absorb any contact with the piston nut 196 at the second height 290.
  • the secondary dampening assembly 280 provides three stages of dampening, whereas traditional jounce bumpers are specifically designed to provide only one force versus deflection characteristic per bumper. Since many different performance characteristics are needed during vehicle dynamic testing, multiple jounce bumpers would be needed.
  • the secondary dampening assembly 280 provides multiple different performance characteristics with the same assembly and by simply changing the characteristics of the first and second springs 292, 296. Further, the secondary dampening assembly 280 provides for three unique dampening characteristics. The first dampening is caused by the first spring 292, the second dampening by the second spring 296, and the third dampening by the compressible stop 286.
  • Figure 19 shows a graph generally of the three stages of force versus deflection characteristics according to this embodiment of the subject invention.
  • the shock absorber 24 has a secondary dampening assembly that is shown generally at 80.
  • the shock absorber 24 of the present invention includes the inner pressure assembly 54 and the base assembly 42.
  • the inner pressure assembly 54 and base assembly 42 cooperate, as described in greater detail below, to define a "double tube" shock absorber 24.
  • the base assembly 42 may be further described as an outer cylinder, wherein the base assembly 42 defines a chamber 138 for at least partially accommodating the inner pressure assembly 54 therein and the chamber 138 terminates at the floor 140.
  • the inner pressure assembly 54 includes the pressure tube 56, the rod guide 72, the compression valve assembly 74, the piston assembly 60, and the rod 44 discussed above.
  • the secondary dampening assembly 80 includes a lockout piston 62 coupled to the second end 58 of the rod 44, a lockout collar 64, and the bridge 66.
  • the lockout piston 62 is preferably attached to the second end 58 of the rod 44 and replaces the nut securing the piston assembly 60 thereto.
  • the bridge 66 is coupled to the lockout collar 64 and engages the pressure tube 56 and compression valve assembly 74. In other words, the lockout collar 64 seals the pressure tube 56.
  • the bridge 66 includes fluid passages 90 for allowing fluid flow.
  • the lockout piston 62 has a diameter less than a diameter of the pressure tube 56 and may be formed with any type of metal, such as steel, or could be a plated metal.
  • the lockout piston 62 includes at least one flow groove 68 extending longitudinally along a side of the lockout piston 62. As best shown in Figure 22, a close-up, side-view of the lockout piston 62 of Figure 21 is shown.
  • the lockout piston 62 preferably includes a plurality of flow grooves 68 disposed radially about the lockout piston 62.
  • a first flow groove 69 having a first height and a first width and a second flow groove 70 having a second height and a second width.
  • first and second flow grooves 69, 70 may be the same or different depending upon the particular application, as will be described in more detail below. Further, there may be one to four tapered flow grooves 68 and each groove's width, taper, or length may vary.
  • the lockout collar 64 is disposed within the pressure tube 56 and the lockout collar 64 has the bore 82 shaped to receive the lockout piston 62.
  • the lockout collar 64 may be made of a powdered metal and may have a plurality of ducts 102 disposed about the outer surface of the lockout collar 64.
  • the outer surface may have from eight to ten ducts 102 depending upon the particular application.
  • the plurality of ducts 102 is shown in Figure 24.
  • the bore 82 defines a sealing channel 84 and at least one seal 86 is disposed in the sealing channel 84 to engage the lockout piston 62 when the lockout piston 62 is disposed in the bore 82.
  • a check valve disc 88 is adjacent the lockout collar 64 for allowing fluid to flow through the lockout collar 64 as understood by those of ordinary skill in the art. In other words, the check valve disc 88 allows fluid to enter the lockout collar 64 during a rebound stroke.
  • the lockout collar 64 has an outer diameter co-extensive with the inner diameter of the pressure tube 56.
  • the sealing channel 84 receives the seal 86.
  • the seal 86 includes a first metal seal 92 and a second non-metal seal 94 disposed in the sealing channel 84.
  • the non-metal seal 94 may be formed of an elastomeric material to bias the metal seal 92 into engagement with the lockout piston 62.
  • the alignment of the lockout piston 62 and the lockout collar 64 is important to ensure proper sealing therebetween. It is not uncommon for the second end 58 of the rod 44 to be slightly angled or tilted.
  • the seal 86 compensates for any misalignment.
  • the non-metal seal 94 assists in compensating for misalignment.
  • FIG. 24 Another embodiment of the secondary dampening assembly 80 is shown in Figure 24.
  • the lockout collar 64 has an outer diameter less than the inner diameter of the pressure tube 56.
  • a radially compensating seal ring 96 disposed in the sealing channel 84 to maintain the lockout piston 62 within the lockout collar 64.
  • a spring 98 is disposed between the lockout collar 64 and the bridge 66.
  • a bridge seal 100 is disposed between the bridge 66 and the lockout collar 64 to seal fluid flow through the bridge 66 and the compression valve assembly 74.
  • the locking disc 136 secures the lockout collar 64 relative to the compression valve assembly 74 in a longitudinal direction.
  • Figure 25 is a close-up, side-view of another embodiment of the lockout collar shown in Figure 24.
  • the lockout piston 62 fits into the lockout collar 64 such that there is an increase in compression dampening forces occurring at the end of the compression stroke of the shock absorber 24. Before the lockout piston 62 enters the bore 82 of the lockout collar 64, the bore 82 is full of fluid. Toward the end of the compression stroke, the lockout piston 62 enters the lockout collar 64 and engages either the seal 86 or the seal ring 96. As the lockout piston 62 travels downward, fluid in lockout collar 64 flows up through the flow groove 68.

Landscapes

  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Fluid-Damping Devices (AREA)

Abstract

A shock absorber is disclosed having a secondary dampening assembly for dampening movement of an inner assembly within the shock absorber. The secondary dampening assembly includes a hydraulic stop piston and a hydraulic stop sleeve. The hydraulic stop piston is carried by an extender with a gap defined radially between the hydraulic stop piston and the extender to allow radial movement. The hydraulic stop sleeve has an open end for receiving the hydraulic stop piston and a flow groove that extends longitudinally along an inner surface of the hydraulic stop sleeve.

Description

SECONDARY DAMPENING ASSEMBLY FOR SHOCK
ABSORBER
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The subject patent application claims priority to and all the benefits of U.S. Provisional Patent Application No. 62/111,269, filed on February 3, 2015, which is herein incorporated by reference in its entirety.
BACKGROUND OF THE INVENTION
1. Field of the Invention
[0002] The present disclosure relates generally to shock absorbers having secondary dampening assemblies. Specifically, the present disclosure describes secondary dampening assemblies, such as lockout pistons and lockout collars, hydraulic stop pistons and hydraulic stop sleeves, flow discs and orifice plugs, and dual-spring stops.
2. Description of the Related Art
[0003] Conventional shock absorbers known in the related art typically include an outer tube, a piston assembly, a rod, fluid, and one or more valves, whereby the piston assembly is connected to the rod and travels within fluid in the outer tube in operation so as to dampen axial movement of the rod with respect to the outer tube. To that end, respective opposing ends of the rod and outer tube are attached to different members or structures so as to dampen movement therebetween. By way of example, conventional automotive suspension systems utilize shock absorbers in connection with springs extemal to the shock absorber to control the suspension dampening in compression and rebound, whereby the shock absorber is typically attached to a knuckle supporting a wheel at one end, and to a portion of the vehicle's frame or body at the other end.
[0004] Depending on the application, the shock absorber may also include an inner tube disposed inside the outer tube, wherein the piston assembly is instead supported in the inner tube. The shock absorber is sealed at an end that receives the piston assembly. The inner tube defines a working chamber filled with fluid through which the piston assembly can move in operation. The piston assembly generally divides the working chamber into an upper working chamber and a lower working chamber. Similarly, a reservoir chamber is defined in the space between the outer tube and the inner tube. The reservoir chamber also contains fluid and is in regulated fluid communication with the working chamber via one or more valves. The chambers are sealed to prevent the leakage of fluid therefrom. The outer tube is typically manufactured from steel and, consequently, can be heavy. Since the outer tube is manufactured from steel, the end of the outer tube is sealed by known methods, such as crimping or roll forming. The outer tube typically engages a rod guide assembly to seal the chambers.
[0005] During normal shock absorber operation, the shock absorber is extended and compressed during vehicle wheel and body articulation. If the shock absorber is completely compressed during wheel or body articulation, a condition referred to as "bottoming out" occurs and causes an abrupt metal-to-metal noise. Further, the condition causes harsh feedback and/or vibrations that are felt by the driver.
BRIEF SUMMARY OF THE INVENTION
[0006] A shock absorber having a secondary dampening assembly is disclosed for absorbing and dissipating forces encountered when the shock absorber is operated. The secondary dampening assembly includes a hydraulic stop piston and a hydraulic stop sleeve. The hydraulic stop piston is carried by an extender with a gap defined radially between the hydraulic stop piston and the extender to allow radial movement. The hydraulic stop sleeve has an open end for receiving the hydraulic stop piston and a flow groove that extends longitudinally along an inner surface of the hydraulic stop sleeve.
BRIEF DESCRIPTION OF THE DRAWINGS
[0007] Other advantages of the present invention will be readily appreciated, as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings wherein:
[0008] Figure 1 is an enlarged perspective view of a generic vehicle showing a conventional suspension system;
[0009] Figure 2 is a partial sectional side view of a corner assembly of the suspension system of Figure 1 having a conventional shock absorber;
[0010] Figure 3 is a partial sectional side view of a corner assembly of the suspension system of Figure 1 having a shock absorber having a secondary dampening assembly;
[0011] Figure 4 is a partial, cross-sectional view of a shock absorber having a secondary dampening assembly according to one embodiment of the subject invention; [0012] Figure 5 is a partial, perspective top-down view and bottom-up view of a hydraulic stop piston shown in Figure 4;
[0013] Figure 6 is a top-down perspective view of a hydraulic stop sleeve shown in Figure 4;
[0014] Figure 7 is a perspective, cross-sectional view of an embodiment of the hydraulic stop sleeve;
[0015] Figure 8 is a perspective, cross-sectional view of another embodiment of the hydraulic stop sleeve;
[0016] Figure 9 is a perspective, cross-sectional view of yet another embodiment of the hydraulic stop sleeve;
[0017] Figure 10 is a cross-sectional view of an embodiment of the hydraulic stop piston having a flow passage;
[0018] Figure 11 is a cross-sectional view of another embodiment of the hydraulic stop piston having a flow passage;
[0019] Figure 12 is a cross-sectional view of another embodiment of the hydraulic stop piston having a first and a second flow passage;
[0020] Figure 13 is a partial, cross-sectional view of a shock absorber according to another embodiment of the subject invention;
[0021] Figure 14 is a side-view of a hydraulic stop piston and hydraulic stop sleeve shown in Figure 13;
[0022] Figure 15 is a partial, cross-sectional view of a shock absorber according to yet another embodiment of the subject invention;
[0023] Figure 16 is a bottom-up, side perspective view of the hydraulic stop piston shown in Figure 15;
[0024] Figure 17 is a partial, cross-sectional view of a secondary dampening assembly according to a further embodiment of the subject invention;
[0025] Figure 18 is a partial, cross-sectional view of a secondary dampening assembly to yet a further embodiment of the subject invention;
[0026] Figure 19 is a graph of force versus deflection characteristics according to the embodiment shown in Figure 18;
[0027] Figure 20 is a partial, cross-sectional view of a shock absorber according to another embodiment of the subject invention; [0028] Figure 21 is a partial, cross-sectional view of a shock absorber comprising a lockout piston and a lockout collar according to one embodiment of the subject invention;
[0029] Figure 22 is a close-up, side-view of the lockout piston shown in Figure 21 ;
[0030] Figure 23 is a partial, cross-sectional view of the lockout piston and lockout collar;
[0031] Figure 24 is a partial, cross-sectional view of a shock absorber according to another embodiment of the subject invention; and
[0032] Figure 25 is a close-up, side-view of another embodiment of the lockout collar shown in Figure 24.
DETAILED DESCRIPTION OF THE INVENTION
[0033] With reference to the Figures, where like numerals are used to designate like structures throughout the several views, a portion of a conventional vehicle is illustrated at 10 in Figure 1. The vehicle 10 includes a body 12 operatively attached to a suspension system 14 defined by four corner assemblies 16. The corner assemblies 16 are each assigned to a rotatably supported wheel 18 and are used to control the relative motion between the vehicle body 12 and wheel 18. The comer assemblies 16 each typically include strut assemblies 20 that include a spring 22 to help absorb impacts and a shock absorber 24 to help control motion of the spring 22 by dampening movement between the wheel 18 and vehicle body 12.
[0034] As shown in Figure 1 , the springs 22 are compression springs and can be either concentrically aligned around the shock absorber 24, or spaced from the shock absorber 24. Thus, those having ordinary skill in the art will appreciate that the shock absorber 24 of the present invention can be used in connection with any suitable type of spring 22 without departing from the scope of the present invention. Moreover, given the number of different suspension systems 14 known in the related art, it will be appreciated that any suitable number of shock absorbers 24 could be used with any suitable number of springs 22. Further, the shock absorber 24 of the present invention is not limited for use in automotive applications, and could be used in any suitable application without departing from the scope of the present invention.
[0035] Referring now to Figure 2, a partial sectional view of the conventional corner assembly 16 is shown for exemplary purposes. Those having ordinary skill in the art will recognize the strut assembly 20 depicted in Figure 2 as a MacPherson strut system, which includes the shock absorber 24 used to control movement between the vehicle body 12 and wheel 18 (not shown in Figure 2). The shock absorber 24 is typically mounted between a top mount assembly, generally indicated at 26, and a knuckle 28. The top mount assembly 26 mounts to the body 12 of the vehicle 10 and helps support the spring 22. An upper spring seat 30 is adj acent the top mount assembly 26 and a lower spring seat 52 receives the spring 22.
[0036] The knuckle 28 typically includes a rotatably supported hub and bearing assembly 32, to which the wheel 18 is operatively attached. The knuckle 28 is also typically connected to a ball j oint 34 mounted to a lower control arm 36 which, in turn, is pivotally supported by a frame member 38 of the vehicle 10. A continuously- variable j oint member 40 translates rotational torque from the vehicle transmission (not shown, but generally known in the art) to the wheel 18 via the hub and bearing assembly 32. Thus, the wheel 18 can rotate in operation to drive the vehicle 10, and the suspension system 14 described above absorbs impacts and allows the wheel 18 to move with respect to the body 12.
[0037] The shock absorber 24 shown in Figure 2 is a standard single-walled shock absorber and generally includes a base assembly 42 and a rod 44 concentrically - aligned with and supported within the base assembly 42 as described in greater detail below. The rod 44 typically includes a stepped and/or threaded upper end 46 adapted to secure the shock absorber 24 to the top mount assembly 26. However, it will be appreciated that the shock absorber 24 could be operatively attached to the top mount assembly 26, or to any suitable portion of the vehicle 10, or to any suitable member irrespective of the application, in any suitable way, without departing from the scope of the present invention.
[0038] The base assembly 42 has a mounting portion 48 adapted to attach the shock absorber 24 to the knuckle 28. While the base assembly 42 depicted in Figure 2 is attached to the knuckle 28 with two bolts 50, those having ordinary skill in the art will appreciate that the base assembly 42 of the shock absorber 24 could be operatively attached to any suitable portion of the vehicle 10, or to any suitable member, in any suitable way, without departing from the scope of the present invention.
[0039] As will be appreciated from the discussion that follows, common reference will be made to the various components of the shock absorbers 24 shown throughout the Figures for the purposes of clarity and consistency. [0040] Referring to Figure 3, Figure 3 is a partial, cross-sectional view of the shock absorber 24 according to one embodiment of the subject invention which has a secondary dampening assembly shown generally at 80. The secondary dampening assembly 80 disposed within the base assembly 42 includes an extender 104 coupled to a second end 58 of the rod 44, a hydraulic stop piston 106 is carried by the extender 104, and a hydraulic stop sleeve 108. The hydraulic stop sleeve 108 has an open end 111 for receiving the hydraulic stop piston 106 and a closed end 112 and defines a non-tapered bore 82 shaped to receive the hydraulic stop piston 106. The hydraulic stop piston 106 has a diameter less than a diameter of the pressure tube 56. In this manner, as the rod 44 is moved up and down, the hydraulic stop piston 106 does not slide along the extender 104.
[0041] Referring to Figure 4, a partial, cross-sectional view of the shock absorber 24 according to one embodiment of the subject invention and having the secondary dampening assembly 80 is shown. The shock absorber 24 includes an inner pressure assembly 54 and the base assembly 42. The inner pressure assembly 54 and base assembly 42 cooperate, as described in greater detail below, to define a "double tube" shock absorber 24. The base assembly 42 may be further described as an outer cylinder, wherein the base assembly 42 defines a chamber 138 for at least partially accommodating the inner pressure assembly 54 therein and the chamber 138 terminates at a floor 140. The inner pressure assembly 54 includes a pressure tube 56, a rod guide 72 (shown in Figure 3), a compression valve assembly 74, a piston assembly 60, and the rod 44 discussed above.
[0042] Still referring to Figure 4, a partial, cross-sectional view of the shock absorber 24 according to one embodiment of the subject invention and having the secondary dampening assembly 80 is shown. The pressure tube 56 extends between an upper end and a lower end and the rod guide 72 is disposed adjacent the upper end of the pressure tube 56. The compression valve assembly 74 is disposed adjacent to the lower end of the pressure tube 56. The piston assembly 60 is disposed in the pressure tube between the rod guide 72 and the secondary dampening assembly 80. The rod 44 is operatively attached to the piston assembly 60 and has the first, upper end 46 supported by the rod guide 72 so as to concentrically align the rod 44 with the pressure tube 56 and the second, lower end 58 disposed within the pressure tube 56. It is to be appreciated that various piston assemblies 60 and compression valve assemblies 74 may be used with the subject invention without departing therefrom. Examples of such piston assemblies 60 and compression valve assemblies 74 are disclosed in United States Patent Nos. 8,590,678 or 8,714,320, both assigned to Tenneco Automotive Operating Company Inc., which are incorporated herein by reference.
[0043] In the embodiment of Figure 4, the extender 104 is coupled to the second end 58 of the rod 44, the hydraulic stop piston 106 is carried by the extender 104, and the hydraulic stop sleeve 108 is disposed within the pressure tube 56. The extender 104 is shaped to receive and secure the hydraulic stop piston 106 relative to the extender 104. The hydraulic stop piston 106 has a diameter less than a diameter of the pressure tube 56.
[0044] The hydraulic stop piston 106 of Figure 4 is carried by the extender 104, and a gap 1 13 is defined radially between the hydraulic stop piston 106 and the extender 104 to allow radial movement. The gap 1 13 is typically a fraction of a mm thick. For example, in many working embodiments, the gap 1 13 has a thickness of from about 0.5 to about 0.01, alternatively from about 0.4 to about 0.05, mm. The hydraulic stop piston 106 can move radially which allows for smooth entry of the hydraulic stop piston 106 into the hydraulic stop sleeve 108 upon compression and a smooth exit of the hydraulic stop piston 106 out of the hydraulic stop sleeve 108 upon rebound. Further, when the hydraulic stop piston 106 is moving in the hydraulic stop sleeve 108 (during compression and during rebound), the extender 104 can move radially which facilitates smooth movement of the hydraulic stop piston 106 and operation of the secondary dampening assembly 80. In other words, the gap 113 allows for radial/latitudinal movement of the hydraulic stop piston 106 which, in-tum, allows for smooth entry of the hydraulic stop piston 106 into the hydraulic stop sleeve 108 upon compression, as well as smooth movement of the hydraulic stop piston 106 in the hydraulic stop sleeve 108, and a smooth exit of the hydraulic stop piston 106 out of the hydraulic stop sleeve 108 upon rebound.
[0045] Still referring to Figure 4, the hydraulic stop sleeve 108 is disposed within the pressure tube 56 such that the hydraulic stop sleeve engages the pressure tube 56. The hydraulic stop sleeve 108 has open end 1 11 for receiving the hydraulic stop piston 106 and defines a non-tapered bore 82 shaped to receive the hydraulic stop piston 106. The hydraulic stop sleeve 108 has a closed end 112. A flange 118 supports the hydraulic stop sleeve 108 above the compression valve assembly 74.
[0046] Referring now to Figure 5, Figure 5 is a partial, perspective top-down view and bottom-up view of the hydraulic stop piston 106 shown in Figure 4. The hydraulic stop piston 106 of Figure 5 includes at least one flow passage 110 extending through the hydraulic stop piston 106 to allow for fluid flow. Although the hydraulic stop piston 106 of Figure 5 includes at least one flow passage 110, various embodiments of the hydraulic stop piston 106 of the secondary dampening assembly 80 of the subject disclosure do not include at least one flow passage 110 extending through the hydraulic stop piston 106 to allow for fluid flow. In this embodiment, the nut 122 is secured to the extender 104, and an intake disc 124 and an intake spring 125 are disposed between the nut 122 and the hydraulic stop piston 106. The intake disc 124 is adjacent to the hydraulic stop piston 106, and the intake spring 125 is disposed adjacent to the nut 122. The nut 122 acts as a stop for the intake spring 125. The nut 122 does not secure the hydraulic stop piston 106 to the extender 104.
[0047] Referring now to Figure 6, Figure 6 is a top-down perspective view of the hydraulic stop sleeve 108 shown in Figure 4. The hydraulic stop sleeve 108 of Figure 6 has the open end 111 for receiving the hydraulic stop piston 106 and defines the non-tapered bore 82 shaped to receive the hydraulic stop piston 106. In this embodiment the bore 82 is not tapered, e.g. does not progressively narrow to provide increased fluidic resistance.
[0048] In the embodiment of Figure 6, the hydraulic stop sleeve 108 has at least one flow groove 116 extending longitudinally along an inner surface 109 of the hydraulic stop sleeve 108. A flange 118 extends about the open end 111 for locating the hydraulic stop sleeve 108 within the pressure tube 56. The flange 118 has a plurality of slots 120 for allowing fluid to flow through.
[0049] Generally referring to the hydraulic stop piston 106 and the hydraulic stop sleeve 108 of the secondary dampening assembly 80 of the shock absorber 24 disclosed herein, the hydraulic stop sleeve 108 has a flow groove 116 extending longitudinally along the inner surface 109 of the hydraulic stop sleeve 108. In the embodiment of Figure 4, the hydraulic stop sleeve 108 has the flow groove 116, more specifically, a plurality of the flow grooves 116, 4 to be exact, extending longitudinally along the inner surface 109 of the hydraulic stop sleeve 108, and the hydraulic stop piston 106 does not have the flow groove 116 extending longitudinally along the outer surface 107 of the hydraulic stop piston 106.
[0050] Regarding the flow groove 1 16, as is established above, at least one of the flow grooves 1 16 is included on the inner surface 109 of the hydraulic stop sleeve 108. Of course, a plurality of the flow grooves 1 16 can be included on the inner surface 109 of the hydraulic stop sleeve 108. In various embodiments, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 1 1, 12, or more flow grooves 116 can be included on the inner surface 109 of the hydraulic stop sleeve 108. The plurality can be further defined as a range comprising any number of flow grooves 1 16 above, e.g. from 2 to 12 or from 2 to 6. The at least one flow groove 1 16 included on the hydraulic stop sleeve 108 can be part of a continuous number (e.g. a pattern) of flow grooves 116 formed on the inner surface 109 of the hydraulic stop sleeve 108.
[0051] In various embodiments, the hydraulic stop piston 106 may also have at least one flow groove 1 16 extending longitudinally along an outer surface 107 of the hydraulic stop piston 106. If one or more flow grooves 1 16 is included on the hydraulic stop piston 106, the flow groove(s) 1 16 can be distinguished from the flow passage 1 10 of the hydraulic stop piston 106 (if included) in that the flow groove 1 16 is cut into the outer surface 107 of the hydraulic stop piston 106 while the flow passage 110 extends through the hydraulic stop piston 106.
[0052] The flow groove 1 16 can define various geometries. For example, in some embodiments, the flow grooves 116 define a semi-circular geometry. In other embodiments, the flow grooves 1 16 define a triangular or even square geometry. If more than one flow groove 116 is included, the flow grooves 116 included can define the same geometry or the flow grooves 1 16 included can define different geometries. The flow groove 116 can be of various sizes, and if more than one flow groove 1 16 is included, the flow grooves 116 included can have the same size or the flow grooves 1 16 included can have different sizes. The geometry, the size, the location, and the number of flow grooves 1 16 included on the hydraulic stop sleeve 108 can be varied to change the amount of dampening provided by the secondary dampening assembly 80.
[0053] In one embodiment, the flow grove 1 16 is tapered to increase resistance as the hydraulic stop piston 106 moves into the hydraulic stop sleeve 108. As an example, a hydraulic stop sleeve 108 having 2 tapered flow grooves 1 16 is shown in Figure 7. In the embodiment of Figure 7, the tapered flow grooves 116 do not extend longitudinally from the open end 111 towards the closed end 112 of the hydraulic stop sleeve 108 for a total length of the hydraulic stop sleeve 108. In many embodiments, the flow grooves 116 extend longitudinally from the open end 111 towards the closed end 112 of the hydraulic stop sleeve 108 a length of from about 70 to about 95, alternatively from about 85 to about 95, % of the total length of the hydraulic stop sleeve 108, but do not extend the total length of the hydraulic stop sleeve 108. In alternative embodiments, one or more of the flow grooves 116 extend longitudinally from the open end 111 towards the closed end 112 of the hydraulic stop sleeve 108 the total length of the hydraulic stop sleeve 108. In some embodiments, a plurality of flow grooves 116 are included on the hydraulic stop sleeve 108 and a combination of tapered and non-tapered flow grooves 116 are included. Non-tapered flow grooves 116 have a uniform geometry or profile to provide consistent resistance as the hydraulic stop piston 106 moves into the hydraulic stop sleeve 108.
[0054] In another embodiment, the hydraulic stop sleeve 108 can include a plurality of flow grooves 116 extending longitudinally and having different lengths along the inner surface 109 of the hydraulic stop sleeve 108. In this embodiment, the plurality of flow grooves 116 extending longitudinally and having different lengths can be tapered, non-tapered, or a combination thereof. For example, referring now to Figure 8, in one non-limiting embodiment, the hydraulic stop sleeve 108 includes four flow grooves 116, a first flow groove 116a extending longitudinally from the open end 111 towards the closed end 112 of the hydraulic stop sleeve 108 and having a length of about 25% of the length of the inner surface 109 of the hydraulic stop sleeve 108, i.e., starting at the open end 111 of the hydraulic stop sleeve 108 and extending about one- quarter of the length of the inner surface 109 of the hydraulic stop sleeve 108, a second flow groove 116b extending longitudinally from the open end 111 towards the closed end 112 of the hydraulic stop sleeve 108 and having a length of about 45% of the length of the inner surface 109 of the hydraulic stop sleeve 108, a third flow groove 116c extending longitudinally from the open end 111 towards the closed end 112 of the hydraulic stop sleeve 108 and having a length of about 65% of the length of the inner surface 109 of the hydraulic stop sleeve 108, and a fourth flow groove 116d extending longitudinally from the open end 111 towards the closed end 112 of the hydraulic stop sleeve 108 and having a length of about 85% of the length of the inner surface 109 of the hydraulic stop sleeve 108. Of course, in various embodiments, different numbers of flow grooves 116 having different lengths can be included to obtain a certain resistance. In such an embodiment, the hydraulic stop sleeve 108 can have a plurality of flow grooves 1 16, all flow grooves 116 having different lengths (as is shown in Figure 8). Alternatively, in such an embodiment, the hydraulic stop sleeve 108 can have a plurality of flow grooves 1 16, some of the flow grooves 116 having the same length and other flow grooves 116 having different lengths.
[0055] In another embodiment, the hydraulic stop sleeve 108 can include the plurality of flow grooves 1 16 extending longitudinally wherein the flow grooves 116 comprise a plurality of holes 1 17 which are drilled into the hydraulic stop sleeve 108. The holes 117 of such are drilled latitudinally into the hydraulic stop sleeve 108. When the hydraulic stop piston 106 enters the hydraulic stop sleeve 108, a fluid (e.g. oil) chamber 114 in the hydraulic stop sleeve 108 is closed, and all remaining fluid is forced out of the fluid chamber 1 14 via the flow grooves 116 in the hydraulic stop sleeve 108 which creates resistance, i.e., additional/secondary dampening. In such embodiments, flow grooves 116 comprising various arrangements of holes 117, drilled latitudinally into the hydraulic stop sleeve 108 can be utilized to achieve the dampening profile desired in the secondary dampening assembly 80.
[0056] In some embodiments, the hydraulic stop sleeve 108 includes the flow groove
1 16 comprising a linear plurality of holes 1 17. In yet another embodiment, the hydraulic stop sleeve 108 includes the flow groove 1 16 comprising a helical plurality of holes 117, as is shown in Figure 9. The size and the number of holes 1 17 included in such embodiments can vary. In some embodiments, of from about 2 to about 10, alternatively from about 2 to about 6, holes 117 are included in the hydraulic stop sleeve 108. In Figure 9, the holes 1 17 are drilled latitudinally into the hydraulic stop sleeve 108. In the embodiment of Figure 9, the amount of holes does not have to decrease along the length to provide an increasing resistance. If there are 5 holes 117 distributed over the length of the hydraulic stop sleeve 108, as is shown in Figure 9, when the hydraulic stop piston 106 enters the hydraulic stop sleeve 108, the 5 holes
1 17 are open, the further the hydraulic stop piston 106 travels into the hydraulic stop sleeve 108, the less open holes 117 will be left below the hydraulic stop piston 106. Thus, in the embodiment of Figure 9, resistance increases as the hydraulic stop piston 106 travels into the hydraulic stop sleeve 108.
[0057] In another embodiment, an amount of holes 1 17 progressively decreases along the length of the hydraulic stop sleeve 108 so that resistance increases as the hydraulic stop piston 106 enters the hydraulic stop sleeve 108. Of course, the amount of holes 1 17 does not have to decrease along the length of the hydraulic stop sleeve 108 to provide increasing resistance.
[0058] Referring back to Figure 4 and, in particular, the secondary dampening assembly 80 of Figure 4, the hydraulic stop sleeve 108 has the closed end 112 and the open end 11 1. The flange 1 18 supports the hydraulic stop sleeve 108 above the compression valve assembly 74. As described previously, the gap 1 13 between the hydraulic stop piston 106 and the extender 104 allows for a small amount of radial/latitudinal movement (radial free play) to facilitate a smooth movement of the hydraulic stop piston 106 as it enters the hydraulic stop sleeve 108, moves in the hydraulic stop sleeve 108, and exits the hydraulic stop sleeve 108. The interior surface 109 at the open end of the hydraulic stop sleeve 108 can be beveled (not shown), or the flange 118 can have a chamfer (not shown) which can further facilitate a smooth entry of the hydraulic stop piston 106 into the hydraulic stop sleeve 108. When the hydraulic stop piston 106 enters the hydraulic stop sleeve 108, the fluid chamber 1 14 in the hydraulic stop sleeve 108 is closed and all remaining fluid needs to pass via the flow groove 116 in the hydraulic stop sleeve 108. The dampening generated by this is additional, and/or secondary, to the main dampening, causing more energy anticipation at compressed position. When the direction changes to rebound, the pressure below the hydraulic stop piston 106 causes the intake disc 124 to lift (into an open position) and the chamber below the hydraulic stop piston 106 is filled again with fluid. Without being limited thereto, in this way, the compression hydraulic stop generates sufficient extra energy anticipation in compression without any effect on rebound.
[0059] The hydraulic stop piston 106 of Figure 5 includes at least one flow passage 1 10 extending through the hydraulic stop piston 106 to allow for fluid flow. Of course, although the hydraulic stop piston 106 of Figure 5 includes at least one flow passage 1 10, various embodiments of the hydraulic stop piston 106 of the secondary dampening assembly 80 of the subject disclosure do not include at least one flow passage 1 10 extending through the hydraulic stop piston 106 to allow for fluid flow. In the embodiment of Figure 5, the nut 122 is secured to the extender 104, and the intake disc 124 and an intake spring 125 are disposed between the nut 122 and the hydraulic stop piston 106.
[0060] As is alluded to above, the intake disc 124 of the hydraulic stop piston 106 of the secondary dampening assembly 80 of the shock absorber 24 disclosed herein is in a closed position when the hydraulic stop piston 106 moves into the hydraulic stop sleeve 108 and is in an open position when the hydraulic stop piston 106 moves out of the hydraulic stop sleeve 108. In one embodiment, when the intake disc 124 of the hydraulic stop piston 106 is in the closed position, the intake disc 124 fully covers the at least one flow passage 1 10 extending through the hydraulic stop piston 106; therefore, the fluid chamber 114 in the hydraulic stop sleeve 108 is fully closed, and fluid which is being compressed in the hydraulic stop sleeve 108 must flow out of the hydraulic stop sleeve 108 via the at least one flow groove 116. Said differently, in such an embodiment, the intake disc 124 is pressed onto a bottom surface of the hydraulic stop piston 106 when the hydraulic stop piston 106 is moving into the hydraulic stop sleeve 108 (i.e., the intake disc 124 is in a closed position) and, thus, fluid is prevented from flowing through the at least one flow passage 110 of the hydraulic stop piston 106 and the fluid must flow through the at least one flow groove 1 16 to relieve the hydraulic pressure in the hydraulic stop sleeve 108 which causes a dampening effect. Referring now to Figure 10, an enlarged cross-sectional view of the hydraulic stop piston 106 of Figures 4 and 5 is shown. In Figure 10, the nut 122 is secured to the extender 104 and an intake disc 124 and an intake spring 125 are disposed between the nut 122 and the hydraulic stop piston 106. The intake disc 124 is adjacent to hydraulic stop piston 106 and the intake spring 125 is disposed adjacent to the nut 122. As such, in the embodiment of Figure 10, the intake disc 124 is pressed onto a bottom surface of the hydraulic stop piston 106 when the hydraulic stop piston 106 is moving into the hydraulic stop sleeve 108 (i.e., the intake disc 124 is in a closed position) and fluid is prevented from flowing through the at least one flow passage 110 of the hydraulic stop piston 106.
[0061] In an alternative embodiment, when the intake disc 124 of the hydraulic stop piston 106 is in the closed position, the intake disc 124 partially covers the at least one flow passage 1 10 extending through the hydraulic stop piston 106; therefore, the fluid chamber 114 in the hydraulic stop sleeve 108 is partially closed, and fluid which is being compressed in the hydraulic stop sleeve 108 must flow out of the hydraulic stop sleeve 108 via both the partially covered at least one flow passage 110 and the at least one flow groove 116. Said differently, the intake disc 124 is pressed onto a bottom surface of the hydraulic stop piston 106 when the hydraulic stop piston 106 is moving into the hydraulic stop sleeve 108 (i.e., the intake disc 124 is in a closed position) and, thus, fluid is restricted (but not prevented) from flowing through the at least one flow passage 110 of the hydraulic stop piston 106 and the fluid must flow through both the partially covered at least one flow passage 110 and the at least one flow groove 116 to relieve the hydraulic pressure in the hydraulic stop sleeve 108 which causes a dampening effect. Referring now to Figure 10, an enlarged cross-sectional view of an embodiment of the hydraulic stop piston 106 is shown. In Figure 10, the nut 122 is secured to the extender 104 and an orifice disc 123 (a plain disc with a notch on its outer diameter), an intake disc 124 and an intake spring 125 are disposed between the nut 122 and the hydraulic stop piston 106. The orifice disc 123 is adjacent to the hydraulic stop piston 106 (i.e., is located between the intake disc 124 and the hydraulic stop piston 106), the intake disc 124 is adjacent to the intake spring 125, which is adjacent to the nut 122. As such, in the embodiment of Figure 10, the orifice disc 123 is pressed onto a bottom surface of the hydraulic stop piston 106 when the hydraulic stop piston 106 is moving into the hydraulic stop sleeve 108 (i.e., the intake disc 124 is in a closed position) and fluid is restricted (but not prevented) from flowing through the at least one flow passage 110 of the hydraulic stop piston 106.
[0062] For purposes of the subject disclosure "fully covers the at least one flow passage 110" means that the intake disc 124 covers about 100% of the at least one flow passage 110 in the hydraulic stop piston 106 and, thus, completely limits the flow of fluid through the at least one flow passage 110 when the hydraulic stop piston 106 is moving into the hydraulic stop sleeve 108. Further, "partially covers the at least one flow passage 110" means that the intake disc 124 covers greater than about 90% of the at least one flow passage 110, alternatively greater than about 80% of the at least one flow passage 110, alternatively greater than about 70% of the at least one flow passage 110, alternatively greater than about 60% of the at least one flow passage 110, alternatively greater than about 50% of the at least one flow passage 110, alternatively greater than about 10% of the at least one flow passage 110, in the hydraulic stop piston 106 and, thus, partially limits the flow of fluid through the at least one flow passage 110 when the hydraulic stop piston 106 is moving into the hydraulic stop sleeve 108. Of course, when the movement/direction of the hydraulic stop piston 106 changes, i.e., the hydraulic stop piston 106 rebounds, the pressure below the hydraulic stop piston 106 causes the intake disc 124 to lift, the flow of fluid through the at least one flow passage 110 is not restricted, and the chamber below the hydraulic stop piston 106 is filled again with fluid.
[0063] Referring now to Figure 12, an enlarged cross-sectional view of an embodiment of the hydraulic stop piston 106 is shown. In Figure 12, the nut 122 is secured to the extender 104, and intake disc 124 and an intake spring 125 are disposed between the nut 122 and the hydraulic stop piston 106. Further, a disc stack 127 is adjacent to the hydraulic stop piston 106 (opposite to the intake disc 124). In Figure 12, two flow passages are shown: 1) a first flow passage HOr which creates a rebound path for the fluid when the hydraulic stop piston 106 is moving out of the hydraulic stop sleeve 108, i.e., upon rebound; and 2) a second flow passage 110c which creates a compression flow path for the fluid when the hydraulic stop piston 106 is moving into the hydraulic stop sleeve 108, i.e., upon compression. The disc stack 127 can be tuned to create a "blow off characteristic at a specified pressure. More specifically, the disc stack 127 can be tuned by adjusting the landing area and the thicknesses of the discs. In this embodiment, the intake disc 124 and the intake spring 125 function as described above. The first flow passage 11 Or functions as previously described herein allowing fluid to flow into the hydraulic stop sleeve as the 108 hydraulic stop piston 106 is moving out of the hydraulic stop sleeve 108. As such, in the embodiment of Figure 12, the orifice disc 123 is pressed onto a bottom surface of the hydraulic stop piston 106 when the hydraulic stop piston 106 is moving into the hydraulic stop sleeve 108 (i.e., the intake disc 124 is in a closed position) and fluid is prevented (as shown) from flowing through the first flow passage 11 Or of the hydraulic stop piston 106 and the second flow passage 110c is open allowing the flow of fluid out of the hydraulic stop sleeve 108. However, the second flow passage 110c is only active when the pressure in the hydraulic stop sleeve 108 below the hydraulic stop piston 106 exceeds a certain pressure level. When the certain pressure level is exceeded (as the hydraulic stop piston 106 is moving into the hydraulic stop sleeve 108), the disc stack 127 will lift and fluid will flow through the second flow passage 110c. In most embodiments, the second flow passage 110c works in conjunction with flow groves 116 that are tapered.
[0064] In another embodiment, the secondary dampening assembly 80 of the subject invention is shown in Figures 13 and 14, wherein the hydraulic stop sleeve 108 includes a terminal cup 126 sealing the closed end 112 of the hydraulic stop sleeve 108. The terminal cup 126 supports the sleeve adjacent to the compression valve assembly 74. The terminal cup 126 has a first sealing surface 130 for sealing the hydraulic stop sleeve 108 and a second sealing surface 132 for sealing the pressure tube 56. The terminal cup 126 further defines terminal flow passages 134 for allowing fluid to flow therethrough.
[0065] In yet another embodiment, the secondary dampening assembly 80 of the subject invention is shown in Figures 15 and 16. Specifically, the hydraulic stop piston 106 is secured to the extender 104 with a locking disc 136 and the hydraulic stop piston 106 does not have any flow passages 110. Instead, the hydraulic stop piston 106 has a cross-shaped inner diameter (flow passage 110) which is defined by four flow grooves 116 and the locking disc 136 has a similarly corresponding cross- shape. The hydraulic stop piston 106 can slide, which enables fluid to flow during the rebound stroke. More specifically, hydraulic stop piston 106 can move axially on the extender 104, so that it works as a check valve.
[0066] Referring to Figure 17, another embodiment of the secondary dampening assembly 180 is shown. The secondary dampening assembly 180 includes an orifice plug 182 disposed within the lower working chamber. The orifice plug 182 has an upper flow disc 184 and a lower flow disc 186 adjacent the orifice plug 182. A sealing ring 188 is disposed in the orifice plug 182 to engage the inner pressure assembly 54. A pair of Belleville washers 190, or discs springs, are located adjacent a bridge 66 with a frusto-conical shape opening away from one another. A flat washer 192 is disposed above the Belleville washer 190 nearest the orifice plug 182. A variable rate spring 194 is disposed between the lower flow disc 186 and the flat washer 192.
[0067] In operation, during the compression stroke, a piston nut 196, secured to the second end 58 (shown threaded) of the rod 44, contacts the upper flow disc 184. This contact forces the orifice plug 182 to slide against the pressure of the variable rate spring 194. Further dampening occurs as the variable rate spring 194 becomes solid, the compression stroke continues and the force causes the Belleville washers 190 to deflect until solid, or flattened out. During the rebound stroke, the Belleville washers 190 return to the original shape and the variable rate spring 194 forces the orifice plug 182 to its original location.
[0068] Referring to Figure 18, yet another embodiment of the secondary dampening assembly 280 is shown. The secondary dampening assembly 280 includes the piston nut 196 secured to the second end 58 of the rod 44 and the piston nut 196 includes a support washer 281 extending therefrom. The support washer 281 has a diameter less than the width of the inner pressure assembly 54 and has a first contact area 282 extending about the support washer 281. The support washer 281 has a downwardly extending portion 284 that has a diameter less than the diameter of the support washer 281. A compressible stop 286 is disposed adjacent the bridge 66 extending between the sides of the inner pressure assembly 54 and has a first height 288 and a second height 290 less than the first height 288. The first height 288 is closest to the sides of the inner pressure assembly 54 and the second height 290 is nearer the center of the inner pressure assembly 54. The compressible stop 286 can be any compressible material, such as urethane or foam material.
[0069] A first spring 292 has a narrow end 293 and a wide end 294 contacting the first height 288 of the compressible stop 286. The wide end 294 has an outer diameter the same as the inner diameter of the inner pressure assembly 54 such that the first spring 292 is press-fit into the inner pressure assembly 54 while the wide end 294 rests against the compressible stop 286. The narrow end 293 has a diameter that is less than the diameter of the support washer 281, but greater than the diameter of the portion 284.
[0070] A second spring 296 is located adjacent to the second height 290 of the compressible stop 286 such that the second spring 296 is press-fit against the step between the first and second heights 288, 290. The second spring 296 has a diameter that will contact the downwardly extending portion 284.
[0071] During a compression stroke, the support washer 281 contacts the narrow end 293 of the first spring 292 providing a first dampening characteristic. As the compression stroke continues, the downwardly extending portion 284 contacts the second spring 296 providing a second dampening characteristic. Once the first and second springs 292, 296 are near solid, the compressible stop 286 may absorb any contact with the piston nut 196 at the second height 290.
[0072] The secondary dampening assembly 280 provides three stages of dampening, whereas traditional jounce bumpers are specifically designed to provide only one force versus deflection characteristic per bumper. Since many different performance characteristics are needed during vehicle dynamic testing, multiple jounce bumpers would be needed. The secondary dampening assembly 280 provides multiple different performance characteristics with the same assembly and by simply changing the characteristics of the first and second springs 292, 296. Further, the secondary dampening assembly 280 provides for three unique dampening characteristics. The first dampening is caused by the first spring 292, the second dampening by the second spring 296, and the third dampening by the compressible stop 286. Figure 19 shows a graph generally of the three stages of force versus deflection characteristics according to this embodiment of the subject invention.
[0073] Referring to Figure 20, a partial, cross-sectional view of the shock absorber 24 according to one embodiment of the subject invention is shown. The shock absorber 24 has a secondary dampening assembly that is shown generally at 80. The shock absorber 24 of the present invention includes the inner pressure assembly 54 and the base assembly 42. The inner pressure assembly 54 and base assembly 42 cooperate, as described in greater detail below, to define a "double tube" shock absorber 24. The base assembly 42 may be further described as an outer cylinder, wherein the base assembly 42 defines a chamber 138 for at least partially accommodating the inner pressure assembly 54 therein and the chamber 138 terminates at the floor 140. The inner pressure assembly 54 includes the pressure tube 56, the rod guide 72, the compression valve assembly 74, the piston assembly 60, and the rod 44 discussed above.
[0074] Referring to Figure 21, the secondary dampening assembly 80, according to one embodiment of the subject invention, includes a lockout piston 62 coupled to the second end 58 of the rod 44, a lockout collar 64, and the bridge 66. The lockout piston 62 is preferably attached to the second end 58 of the rod 44 and replaces the nut securing the piston assembly 60 thereto. The bridge 66 is coupled to the lockout collar 64 and engages the pressure tube 56 and compression valve assembly 74. In other words, the lockout collar 64 seals the pressure tube 56. The bridge 66 includes fluid passages 90 for allowing fluid flow.
[0075] The lockout piston 62 has a diameter less than a diameter of the pressure tube 56 and may be formed with any type of metal, such as steel, or could be a plated metal. The lockout piston 62 includes at least one flow groove 68 extending longitudinally along a side of the lockout piston 62. As best shown in Figure 22, a close-up, side-view of the lockout piston 62 of Figure 21 is shown. The lockout piston 62 preferably includes a plurality of flow grooves 68 disposed radially about the lockout piston 62. A first flow groove 69 having a first height and a first width and a second flow groove 70 having a second height and a second width. The width and height of the first and second flow grooves 69, 70 may be the same or different depending upon the particular application, as will be described in more detail below. Further, there may be one to four tapered flow grooves 68 and each groove's width, taper, or length may vary.
[0076] With reference back to Figure 21, the lockout collar 64 is disposed within the pressure tube 56 and the lockout collar 64 has the bore 82 shaped to receive the lockout piston 62. The lockout collar 64 may be made of a powdered metal and may have a plurality of ducts 102 disposed about the outer surface of the lockout collar 64. For example, the outer surface may have from eight to ten ducts 102 depending upon the particular application. The plurality of ducts 102 is shown in Figure 24. The bore 82 defines a sealing channel 84 and at least one seal 86 is disposed in the sealing channel 84 to engage the lockout piston 62 when the lockout piston 62 is disposed in the bore 82. A check valve disc 88 is adjacent the lockout collar 64 for allowing fluid to flow through the lockout collar 64 as understood by those of ordinary skill in the art. In other words, the check valve disc 88 allows fluid to enter the lockout collar 64 during a rebound stroke. The lockout collar 64 has an outer diameter co-extensive with the inner diameter of the pressure tube 56.
[0077] Referring to Figure 23, the sealing channel 84 receives the seal 86. Specifically, one embodiment of the seal 86 includes a first metal seal 92 and a second non-metal seal 94 disposed in the sealing channel 84. The non-metal seal 94 may be formed of an elastomeric material to bias the metal seal 92 into engagement with the lockout piston 62. The alignment of the lockout piston 62 and the lockout collar 64 is important to ensure proper sealing therebetween. It is not uncommon for the second end 58 of the rod 44 to be slightly angled or tilted. The seal 86 compensates for any misalignment. The non-metal seal 94 assists in compensating for misalignment.
[0078] Another embodiment of the secondary dampening assembly 80 is shown in Figure 24. The lockout collar 64 has an outer diameter less than the inner diameter of the pressure tube 56. A radially compensating seal ring 96 disposed in the sealing channel 84 to maintain the lockout piston 62 within the lockout collar 64. In order to maintain the position of the lockout collar 64, a spring 98 is disposed between the lockout collar 64 and the bridge 66. A bridge seal 100 is disposed between the bridge 66 and the lockout collar 64 to seal fluid flow through the bridge 66 and the compression valve assembly 74. The locking disc 136 secures the lockout collar 64 relative to the compression valve assembly 74 in a longitudinal direction. Figure 25 is a close-up, side-view of another embodiment of the lockout collar shown in Figure 24.
[0079] The operation of the secondary dampening assembly 80 shown in Figures 15- 19 will be discussed generally with reference to both embodiments shown therein. The lockout piston 62 fits into the lockout collar 64 such that there is an increase in compression dampening forces occurring at the end of the compression stroke of the shock absorber 24. Before the lockout piston 62 enters the bore 82 of the lockout collar 64, the bore 82 is full of fluid. Toward the end of the compression stroke, the lockout piston 62 enters the lockout collar 64 and engages either the seal 86 or the seal ring 96. As the lockout piston 62 travels downward, fluid in lockout collar 64 flows up through the flow groove 68. Due to the taper of the flow groove 68, the amount of fluid forced up and out of the lockout collar 64 is being forced through a smaller tapered area. The fluid restriction increases and the compression lockout force increases. During a rebound stroke, as the lockout piston 62 travels upward, the pressure differential causes the check valve disc 88 to open and allows fluid to flow.
[0080] Obviously, many modifications and variations of the present invention are possible in light of the above teachings. The invention may be practiced otherwise than as specifically described within the scope of the appended claims. In addition, the reference numerals in the claims are merely for convenience and are not to be read in any way as limiting.

Claims

CLAIMS What is claimed is:
1. A shock absorber assembly comprising:
a pressure tube extending between an upper end and a lower end;
a rod guide disposed adjacent said upper end of said pressure tube;
a compression valve assembly disposed adj acent to said lower end of said pressure tube;
a piston assembly disposed in said pressure tube between said rod guide and said compression valve assembly;
a rod operatively attached to said piston assembly and having a first end supported by said rod guide so as to concentrically align said rod with said pressure tube, and a second end disposed within said pressure tube;
an extender coupled to said second end of said rod;
a hydraulic stop piston having a diameter less than a diameter of said pressure tube, said hydraulic stop piston carried by said extender with a gap defined radially between said hydraulic stop piston and said extender to allow radial movement;
a hydraulic stop sleeve disposed within said pressure tube such that said hydraulic stop sleeve engages said pressure tube, said hydraulic stop sleeve having an open end for receiving said hydraulic stop piston and a closed end and defining a non- tapered bore shaped to receive said hydraulic stop piston; and
wherein said hydraulic stop sleeve has a flow groove extending longitudinally along an inner surface of said hydraulic stop sleeve.
2. An assembly as set forth in claim 1 including a plurality of said flow grooves.
3. An assembly as set forth in claim 2 wherein said plurality is further defined as from 2 to 6.
4. An assembly as set forth in claim 2 or claim 3 wherein said plurality of flow grooves extend longitudinally along said inner surface of said hydraulic stop sleeve from an open end towards a closed end of said hydraulic stop sleeve and have at least two different lengths.
5. An assembly as set forth in any one of claims 2-4 wherein the plurality of flow grooves are further defined as tapered, non-tapered, or a combination thereof.
6. An assembly as set forth in any preceding claim wherein said hydraulic stop piston includes at least one flow passage extending through said hydraulic stop piston.
7. An assembly as set forth in claim 6 wherein said hydraulic stop piston is secured to said extender with a nut, and an intake disc and an intake spring are disposed between said nut and said hydraulic stop piston.
8. An assembly as set forth in claim 7 wherein said intake disc fully covers said at least one flow passage extending through said hydraulic stop piston when said intake disc is in a closed position.
9. An assembly as set forth in claim 7 wherein said intake disc partially covers said at least one flow passage extending through said hydraulic stop piston when said intake disc is in a closed position.
10. An assembly as set forth in claim 9 further comprising an orifice disc between said hydraulic stop piston and said intake disc.
11. An assembly as set forth in claim 1 wherein said hydraulic stop piston includes a first and a second flow passage extending through said hydraulic stop piston.
12. An assembly as set forth in claim 11 wherein said first flow passage provides a rebound path for a fluid when said hydraulic stop piston is moving out of said hydraulic stop sleeve and said second flow passage provides a compression flow path for said fluid when said hydraulic stop piston is moving into said hydraulic stop sleeve.
13. An assembly as set forth in any preceding claim wherein said closed end further comprises a terminal cup sealing said hydraulic stop sleeve and supporting said sleeve adjacent to said compression valve assembly, said terminal cup having a first sealing surface for sealing said hydraulic stop sleeve, a second sealing surface for sealing said pressure tube, and flow passages for allowing fluid to flow therethrough.
14. An assembly as set forth in any preceding claim wherein said hydraulic stop sleeve includes a flange extending about said open end for locating said hydraulic stop sleeve within said pressure tube.
15. An assembly as set forth in any preceding claim wherein said gap has a thickness of from about 0.5 to about 0.01 mm.
PCT/US2016/016296 2015-02-03 2016-02-03 Secondary dampening assembly for shock absorber Ceased WO2016126776A1 (en)

Priority Applications (2)

Application Number Priority Date Filing Date Title
DE112016000579.2T DE112016000579B4 (en) 2015-02-03 2016-02-03 SECONDARY DAMPING ARRANGEMENT FOR A SHOCK ABSORBER
CN201680007419.7A CN107208726B (en) 2015-02-03 2016-02-03 Secondary damping components for shock absorbers

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US201562111269P 2015-02-03 2015-02-03
US62/111,269 2015-02-03

Publications (1)

Publication Number Publication Date
WO2016126776A1 true WO2016126776A1 (en) 2016-08-11

Family

ID=56554015

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2016/016296 Ceased WO2016126776A1 (en) 2015-02-03 2016-02-03 Secondary dampening assembly for shock absorber

Country Status (4)

Country Link
US (1) US9605726B2 (en)
CN (1) CN107208726B (en)
DE (1) DE112016000579B4 (en)
WO (1) WO2016126776A1 (en)

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9605726B2 (en) 2015-02-03 2017-03-28 Tenneco Automotive Operating Company Inc. Secondary dampening assembly for shock absorber
US9822837B2 (en) 2015-02-06 2017-11-21 Tenneco Automotive Operating Company Inc. Secondary dampening assembly for shock absorber
EP3499084A1 (en) 2017-12-15 2019-06-19 BeijingWest Industries Co. Ltd. Hydraulic damper with a hydraulic compression stop assembly
US10527122B2 (en) 2017-02-03 2020-01-07 Beijingwest Industries Co., Ltd. Hydraulic damper with a hydraulic compression stop arrangement

Families Citing this family (61)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP3295051B1 (en) * 2015-03-16 2020-01-15 Sistemi Sospensioni S.p.A. Hydraulic compression stop member for a hydraulic shock-absorber for a vehicle suspension
DE102016224353A1 (en) * 2016-12-07 2018-06-07 Zf Friedrichshafen Ag Hydraulic end stop for a vibration damper
EP3348884B1 (en) * 2017-01-13 2019-11-27 Hamilton Sundstrand Corporation Hydraulic damping valve
DE102017001786B4 (en) * 2017-02-24 2022-09-01 ACE Stoßdämpfer GmbH Sleeve for a damper, damper, system, manufacturing method for a sleeve, manufacturing method for a damper
CN107143604B (en) * 2017-06-29 2023-02-28 黄永宁 Automatic regulating valve of shock absorber and stepped oil discharging method thereof
JP6291120B1 (en) * 2017-08-29 2018-03-14 株式会社ショーワ Hydraulic shock absorber
DE102017010876B4 (en) * 2017-11-24 2023-06-01 Günther Zimmer Cylinder-piston unit with load-dependent throttle
CN107830101A (en) * 2017-12-07 2018-03-23 南阳淅减汽车减振器有限公司 A kind of shock absorber compression hydraulic buffer gear
IT201800003215A1 (en) * 2018-03-02 2019-09-02 Sistemi Sospensioni Spa Hydraulic shock absorber, particularly for vehicle suspension, with double compression valve.
US11255399B2 (en) * 2018-03-14 2022-02-22 Zf Friedrichshafen Ag Damping valve for a vibration damper
US10603974B2 (en) * 2018-04-24 2020-03-31 Beijingwest Industries Co., Ltd. Hydraulic damper with a hydraulic stop arrangement
DE102018208917A1 (en) * 2018-06-06 2019-12-12 Zf Friedrichshafen Ag Automobile shock absorber
CN108791138B (en) * 2018-07-09 2019-12-17 南京自强铁路车辆配件有限公司 Method for improving running stability of automobile
JP7000267B2 (en) * 2018-07-10 2022-02-04 本田技研工業株式会社 Inverted vibration damping device
US11199237B2 (en) * 2018-08-08 2021-12-14 Raptor Performance Shocks, LLC Internal bypass shock absorber
CN108825940B (en) * 2018-08-23 2023-09-08 江西铜业集团铜材有限公司 Shock-proof device for electric control cabinet of wire drawing machine
IT201800010763A1 (en) * 2018-12-03 2020-06-03 Sistemi Sospensioni Spa Hydraulic shock absorber, particularly for vehicle suspension, with hydraulic buffer operating during the compression stroke of the shock absorber and with adjustment device to adjust the behavior of the hydraulic buffer according to the vehicle load.
US10876591B2 (en) * 2019-02-13 2020-12-29 Tenneco Automotive Operating Company Inc. Damper hydraulic compression stop cup
FR3093155B1 (en) * 2019-02-21 2021-02-19 Psa Automobiles Sa HYDRAULIC SHOCK ABSORBER EQUIPPED WITH A SELF-ADAPTABLE LIMIT STOP
FR3094057B1 (en) * 2019-03-22 2021-03-12 Psa Automobiles Sa SHOCK ABSORBER WITH SELF-ADAPTABLE LIMIT STOPS EQUIPPED WITH A CHAMBER IN FRONT OF A BOISSEAU
FR3094058B1 (en) * 2019-03-22 2021-03-12 Psa Automobiles Sa SHOCK ABSORBER WITH SELF-ADAPTABLE LIMIT SWITCH FITTED WITH HOLES IN THE ROD
FR3094433B1 (en) * 2019-03-27 2021-03-12 Psa Automobiles Sa SHOCK ABSORBER WITH SELF-ADAPTABLE LIMIT STOPS EQUIPPED WITH A FLOATING BOX
DE102019206510A1 (en) * 2019-05-07 2020-11-12 Zf Friedrichshafen Ag Vibration damper with a hydraulic pressure stop
DE112020002358T5 (en) 2019-05-13 2022-01-27 Tenneco Automotive Operating Company Inc. Hydraulic compression stop with preloaded piston
US11047445B2 (en) * 2019-07-18 2021-06-29 Tenneco Automotive Operating Company Inc. Damper with dual pistons
US11181161B2 (en) * 2019-09-23 2021-11-23 DRiV Automotive Inc. Shock absorber base valve assembly
US11187298B2 (en) * 2019-11-01 2021-11-30 DRiV Automotive Inc. Extension assembly for damper
ES2832888B2 (en) * 2019-12-11 2022-04-07 Kyb Europe Gmbh Sucursal En Navarra VARIABLE LOAD HYDRAULIC CONTROL DEVICE
CN112483576B (en) * 2019-12-27 2022-04-22 北京京西重工有限公司 Hydraulic damper assembly
CN111043221B (en) * 2020-01-06 2021-06-15 北京京西重工有限公司 Damper Assembly
CN112377553B (en) * 2020-02-25 2022-03-29 北京京西重工有限公司 Damper assembly and housing therefor
KR102482244B1 (en) * 2020-03-26 2022-12-28 에이치엘만도 주식회사 Shock absorber
US12128723B2 (en) * 2020-03-27 2024-10-29 Fox Factory, Inc. Wear sleeve for a shock body
CN111520433B (en) * 2020-03-31 2022-08-19 株洲时代新材料科技股份有限公司 Double-piston viscous damper
CN111765194B (en) * 2020-06-24 2021-12-07 北京京西重工有限公司 Hydraulic damper assembly
DE102020209113A1 (en) * 2020-07-21 2022-01-27 Zf Friedrichshafen Ag Throttle point for a vibration damper
DE102020209847A1 (en) 2020-08-05 2022-02-10 Zf Friedrichshafen Ag Vibration damper with a hydraulic pressure stop
DE102020210809A1 (en) 2020-08-26 2022-03-03 Volkswagen Aktiengesellschaft Shock absorber with hydraulic pressure stop and vehicle
CN112161015B (en) * 2020-10-28 2022-05-06 北京京西重工有限公司 Hydraulic Damper Assembly and Additional Piston for Hydraulic Damper Assembly
CN114645920B (en) * 2020-12-21 2023-05-05 比亚迪股份有限公司 Damper, shock absorber and car
EP4075015A1 (en) * 2021-04-14 2022-10-19 BeijingWest Industries Co. Ltd. Hydraulic damper with a hydraulic compression stop assembly
CN113074207B (en) 2021-04-14 2022-04-29 北京京西重工有限公司 Hydraulic damper
DE102021203895B4 (en) * 2021-04-20 2024-11-14 Zf Friedrichshafen Ag Vibration damper with a hydraulic pressure stop
US12025205B2 (en) 2021-04-22 2024-07-02 DRiV Automotive Inc. Hydraulic rebound stop pressure relief system
KR102885793B1 (en) * 2021-05-18 2025-11-13 에이치엘만도 주식회사 Shock absorber
CN113915279B (en) * 2021-10-09 2023-02-24 北京京西重工有限公司 Hydraulic damper
CN114517819B (en) * 2022-02-08 2023-07-25 北京京西重工有限公司 Single tube damper assembly and hydraulic rebound stop assembly therefor
CN114542645B (en) * 2022-03-03 2023-09-22 北京京西重工有限公司 Damper assembly and hydraulic compression stop assembly
CN115013466A (en) * 2022-04-27 2022-09-06 江铃汽车股份有限公司 Shock absorber and car
US20230356558A1 (en) * 2022-05-04 2023-11-09 Fox Factory, Inc. Shock assembly with by-pass and hydraulic adjust
EP4311955A1 (en) * 2022-07-28 2024-01-31 Öhlins Racing AB Damper
US12595835B2 (en) 2022-09-09 2026-04-07 Thyssenkrupp Bilstein Of America Inc. End-stop control valves for providing progessive damping forces in vibration dampers
TR2022014430A2 (en) * 2022-09-19 2023-02-21 Maysan Mando Otomotiv Parcalari Sanayi Ve Ticaret Anonim Sirketi A PISTON ASSEMBLY WITH IMPROVED DAMPING FEATURES
US12372133B2 (en) * 2022-09-28 2025-07-29 Hitachi Astemo, Ltd. Shock absorber
KR102885302B1 (en) * 2023-02-17 2025-11-13 에이치엘만도 주식회사 Shock absorber
CN116221325A (en) * 2023-02-22 2023-06-06 北京京西重工有限公司 Hydraulic compression stop sleeve and damper assembly with hydraulic compression stop
CN116136245A (en) * 2023-03-09 2023-05-19 四川宁江山川机械有限责任公司 A groove type hydraulic buffer device for vehicle shock absorber and its use method
CN116292723A (en) * 2023-03-09 2023-06-23 四川宁江山川机械有限责任公司 Valve body for vehicle suspension damper
DE112023005608T5 (en) * 2023-05-02 2025-11-06 Astemo, Ltd. SHOCK ABSORPTION DEVICE AND SUSPENSION DEVICE
DE102023205445A1 (en) * 2023-06-13 2024-12-19 Zf Friedrichshafen Ag Vibration damper with a hydraulic pressure stop
US11959529B1 (en) * 2023-08-14 2024-04-16 Alfred Franklin Nibecker Allow air springs to be self-charging

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6352145B1 (en) * 1998-10-07 2002-03-05 Tenneco Automotive Inc. Stroke dependent damping
US20070000743A1 (en) * 2005-06-29 2007-01-04 Showa Corporation Adjustable damping force hydraulic shock absorber
US20090101459A1 (en) * 2005-09-09 2009-04-23 Yamaha Hatsudoki Kabushiki Kaisha Hydraulic shock absorber
CN101456111A (en) * 2007-12-12 2009-06-17 刘冬山 Automobile absorber repair technique and method
US20120061194A1 (en) * 2010-09-07 2012-03-15 Mando Corporation Shock absorber

Family Cites Families (50)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2537423A (en) * 1947-08-06 1951-01-09 Gen Motors Corp Shock absorber
US2519605A (en) * 1947-12-13 1950-08-22 Gen Motors Corp Shock absorber
US2742112A (en) 1951-07-05 1956-04-17 Houdaille Hershey Corp Telescopic shock absorber construction
US2783859A (en) 1954-12-16 1957-03-05 Gabriel Co Shock absorber with compression stop
US2907414A (en) 1956-06-06 1959-10-06 Gabriel Co Shock absorber with hydraulic compression stops
US2984321A (en) 1959-11-20 1961-05-16 Gen Motors Corp Hydraulic shock absorber with compression cut-off
DE1248382B (en) * 1962-08-30 1967-08-24 Jean Louis Gratzmuller Vibration damper
US3175645A (en) 1962-09-13 1965-03-30 Stabilus Ind Handels Gmbh Shock absorber with primary and secondary damping chambers
US3344894A (en) * 1965-10-14 1967-10-03 Rex Chainbelt Inc Adjustable hydraulic shock absorber
GB1132038A (en) * 1966-03-17 1968-10-30 Woodhead Mfg Company Ltd Vibration dampers
US3750856A (en) * 1971-12-09 1973-08-07 G Kenworthy Adjustable, pressure compensating shock absorber/buffer
US4010829A (en) 1974-09-30 1977-03-08 Yamaha, Hatsudoki Kabushiki Kaisha Hydraulic shock absorber
DE2516478C3 (en) 1975-04-15 1978-12-07 Suspa-Federungstechnik Fritz Bauer & Soehne Ohg, 8503 Altdorf Gas spring
US4026533A (en) * 1975-08-29 1977-05-31 Hennells Ransom J Shock absorber with conical control elements
FR2349767A1 (en) * 1976-04-30 1977-11-25 Bourcier Carbon Christian GAS SHOCK ABSORBER SIMULTANEOUSLY ENSURING THE SPRING FUNCTION
US4337849A (en) * 1980-07-24 1982-07-06 The United States Of America As Represented By The Secretary Of The Army Energy management damper
DE3231739A1 (en) * 1982-08-26 1984-03-01 Fichtel & Sachs Ag, 8720 Schweinfurt TWO TUBE VIBRATION DAMPER OR SHOCK ABSORBER WITH VARIABLE DAMPING FORCE
JPS626403A (en) 1985-06-29 1987-01-13 Nec Home Electronics Ltd Head amplifier device
US4971181A (en) 1988-04-11 1990-11-20 General Motors Corporation Preloaded piston valving for hydraulic dampers and method of assembling the same
JPH07233842A (en) 1994-02-21 1995-09-05 Showa:Kk Oil lock device for hydraulic shock absorber
JP2985707B2 (en) 1995-01-31 1999-12-06 トヨタ自動車株式会社 Self-pumping shock absorber
US5996978A (en) * 1996-08-27 1999-12-07 Honda Giken Kogyo Kabushiki Kaisha Hydraulic damper for vehicle
DE19829765A1 (en) 1997-08-12 1999-02-18 Mannesmann Sachs Ag Vehicular running gear vibration dampener has piston in pressurised cylinder
US5992585A (en) 1998-03-19 1999-11-30 Tenneco Automotive Inc. Acceleration sensitive damping for automotive dampers
SE515321C2 (en) 1998-12-02 2001-07-16 Oehlins Racing Ab Shock absorber with cylinder comprising a piston rod with at least two pistons
US20040026836A1 (en) 2002-08-07 2004-02-12 Brookes Graham R. Vehicle suspension system
US7320388B2 (en) * 2003-09-15 2008-01-22 Tenneco Automotive Operating Company Inc. Stroke dependent damping
US7441640B2 (en) 2003-10-08 2008-10-28 Peter Russell Shock absorber apparatus
US7431135B2 (en) * 2004-10-27 2008-10-07 Tenneco Automotive Operating Company Inc. Stroke dependent damping
FR2885192A1 (en) 2005-04-29 2006-11-03 Renault Sas HYDRAULIC STOP SYSTEM OF A MOTOR VEHICLE
US20070051574A1 (en) * 2005-09-02 2007-03-08 Tenneco Automotive Operating Company, Inc. Rod guide seal
US7216861B1 (en) 2005-09-07 2007-05-15 Big Shot Performance, Llc Protective sleeve for adjustable shock absorber
JP4839196B2 (en) 2006-03-28 2011-12-21 カヤバ工業株式会社 Vehicle height adjustment device
US7743896B2 (en) * 2006-10-11 2010-06-29 Tenneco Automotive Operating Company Inc. Shock absorber having a continuously variable semi-active valve
KR100894799B1 (en) * 2007-12-05 2009-04-22 주식회사 만도 Shock absorber
SE531694C2 (en) 2007-12-19 2009-07-07 Oehlins Racing Ab Shock absorber with double piston
US8550223B2 (en) 2008-05-09 2013-10-08 Fox Factory, Inc. Methods and apparatus for position sensitive suspension dampening
CN201190757Y (en) * 2008-05-09 2009-02-04 胡建新 Magnetic induction control shock-absorber for automobile
US8297418B2 (en) 2008-06-05 2012-10-30 Tenneco Automotive Operating Company Inc. Nested check high speed valve
US8511447B2 (en) 2009-02-05 2013-08-20 Tenneco Automotive Operating Company Inc. Triple tube shock absorber having a shortened intermediate tube
US8701846B2 (en) 2009-08-26 2014-04-22 Tenneco Automotive Operating Company Inc Inverted strut comprising an air damper combined with a hydraulic stop
CN202023876U (en) 2010-09-28 2011-11-02 京西重工股份有限公司 Hydraulic damper
US8408569B2 (en) * 2011-01-17 2013-04-02 Tenneco Automotive Operating Company Inc. Damper tube reinforcement sleeve
CN103998815B (en) * 2011-12-13 2016-06-22 北京京西重工有限公司 Hydraulic damper and assemble method thereof
DE102011089140B3 (en) * 2011-12-20 2013-03-28 Zf Friedrichshafen Ag Vibration damper with a hydraulic end stop
PL2901039T3 (en) 2012-09-26 2023-02-20 Maysan Mando Otomotiv Parc. San. Ve Tic. A.S. Shock absorber having hydraulic damping mechanism
US9133902B2 (en) * 2013-01-22 2015-09-15 Kyntec Corporation Shock absorber with variable damping profile
CN103953676B (en) * 2014-05-14 2015-10-21 北京京西重工有限公司 There is hydraulic damper and the manufacture method thereof of hydraulic pressure stop configurations
DE112016000579B4 (en) 2015-02-03 2024-03-28 Tenneco Automotive Operating Company Inc. SECONDARY DAMPING ARRANGEMENT FOR A SHOCK ABSORBER
US9822837B2 (en) 2015-02-06 2017-11-21 Tenneco Automotive Operating Company Inc. Secondary dampening assembly for shock absorber

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6352145B1 (en) * 1998-10-07 2002-03-05 Tenneco Automotive Inc. Stroke dependent damping
US20070000743A1 (en) * 2005-06-29 2007-01-04 Showa Corporation Adjustable damping force hydraulic shock absorber
US20090101459A1 (en) * 2005-09-09 2009-04-23 Yamaha Hatsudoki Kabushiki Kaisha Hydraulic shock absorber
CN101456111A (en) * 2007-12-12 2009-06-17 刘冬山 Automobile absorber repair technique and method
US20120061194A1 (en) * 2010-09-07 2012-03-15 Mando Corporation Shock absorber

Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9605726B2 (en) 2015-02-03 2017-03-28 Tenneco Automotive Operating Company Inc. Secondary dampening assembly for shock absorber
US9822837B2 (en) 2015-02-06 2017-11-21 Tenneco Automotive Operating Company Inc. Secondary dampening assembly for shock absorber
US10527122B2 (en) 2017-02-03 2020-01-07 Beijingwest Industries Co., Ltd. Hydraulic damper with a hydraulic compression stop arrangement
EP3499084A1 (en) 2017-12-15 2019-06-19 BeijingWest Industries Co. Ltd. Hydraulic damper with a hydraulic compression stop assembly
KR20190072458A (en) * 2017-12-15 2019-06-25 베이징웨스트 인더스트리즈 코포레이션 리미티드 Hydraulic damper with a hydraulic compression stop assembly
US10670107B2 (en) 2017-12-15 2020-06-02 Beijingwest Industries Co., Ltd. Hydraulic damper with a hydraulic compression stop assembly
KR102131400B1 (en) 2017-12-15 2020-07-09 베이징웨스트 인더스트리즈 코포레이션 리미티드 Hydraulic damper with a hydraulic compression stop assembly
CN111810570A (en) * 2017-12-15 2020-10-23 北京京西重工有限公司 hydraulic damper
US11131362B2 (en) 2017-12-15 2021-09-28 Beijingwest Industries Co., Ltd. Hydraulic damper with a hydraulic compression stop assembly
CN111810570B (en) * 2017-12-15 2021-12-03 北京京西重工有限公司 Hydraulic damper

Also Published As

Publication number Publication date
US20160223045A1 (en) 2016-08-04
CN107208726A (en) 2017-09-26
CN107208726B (en) 2019-10-01
DE112016000579T5 (en) 2017-12-21
US9605726B2 (en) 2017-03-28
DE112016000579B4 (en) 2024-03-28

Similar Documents

Publication Publication Date Title
US9605726B2 (en) Secondary dampening assembly for shock absorber
US11867254B2 (en) Pressure relief for a hydraulic compression stop device
US9822837B2 (en) Secondary dampening assembly for shock absorber
US9695900B2 (en) Damper with digital valve
US20200300330A1 (en) Methods and apparatus for position sensitive suspension damping
US7431135B2 (en) Stroke dependent damping
US8794407B2 (en) Velocity progressive valving
US8132654B2 (en) Hydraulic damper with compensation chamber
CN103291823B (en) Nested check high speed valve
US8066105B2 (en) Hydraulic suspension damper
KR101278535B1 (en) Asymmetrical Intake Damper Valve
US8627933B2 (en) Two stage valve and hydraulic damped valve
CN100422593C (en) Additional support area for valve disc
US6230858B1 (en) Internally slotted orifice disc for low speed control in automotive dampers
US11904650B2 (en) Shock absorber

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 16747158

Country of ref document: EP

Kind code of ref document: A1

WWE Wipo information: entry into national phase

Ref document number: 112016000579

Country of ref document: DE

122 Ep: pct application non-entry in european phase

Ref document number: 16747158

Country of ref document: EP

Kind code of ref document: A1