[미국특허]
Bicycle suspension assembly including inertia valve and gas spring
원문보기
IPC분류정보
국가/구분
United States(US) Patent
등록
국제특허분류(IPC7판)
F16F-009/504
F16F-009/50
F16F-009/08
F16F-009/00
B62K-025/04
출원번호
US-0548977
(2006-10-12)
등록번호
US-7490705
(2009-02-17)
발명자
/ 주소
Fox,Robert C.
출원인 / 주소
Fox Factory, Inc.
대리인 / 주소
Patterson & Sheridan, L.L.P.
인용정보
피인용 횟수 :
23인용 특허 :
85
초록▼
A bicycle suspension assembly including an inertia valve is described. The suspension assembly includes first and second telescopingly engaged tubular portions configured to move closer together during compression of the suspension assembly. The bicycle suspension assembly may include an air spring
A bicycle suspension assembly including an inertia valve is described. The suspension assembly includes first and second telescopingly engaged tubular portions configured to move closer together during compression of the suspension assembly. The bicycle suspension assembly may include an air spring tending to expand the bicycle suspension assembly.
대표청구항▼
That which is claimed: 1. A bicycle suspension assembly, comprising: first and second telescoping portions that move closer together during compression of the suspension assembly, wherein: 1) the first telescoping portion defines a portion of a gas spring that at least partially surrounds and engag
That which is claimed: 1. A bicycle suspension assembly, comprising: first and second telescoping portions that move closer together during compression of the suspension assembly, wherein: 1) the first telescoping portion defines a portion of a gas spring that at least partially surrounds and engages the second telescoping portion; and 2) the second telescoping portion defines a portion of a damper body having a longitudinal axis and containing damping fluid; a piston coupled to a piston rod; the piston and a portion of the piston rod movable along the longitudinal axis of, and within, the damper body; a reservoir including a reservoir tube having a longitudinal axis non-coaxial with the longitudinal axis of the damper body; an inner surface of the reservoir tube and a moveable sealed barrier partially defining a variable volume reservoir chamber; a compression fluid flow circuit in fluid communication with the damper body and the reservoir chamber for conveying fluid flow from the damper body to the reservoir chamber during a compression stroke, as the piston rod moves further into the damper body; an inertia valve, positioned within the reservoir tube, for at least partially controlling fluid flow resistance through the compression fluid flow circuit, and comprising a slidable inertia mass and a valve shaft surrounded by the inertia mass and guiding translational motion of the inertia mass; and a blow-off valve configured to: a) substantially inhibit fluid flow from the damper body through the blow-off valve in response to fluid pressure in the damper body below a predetermined pressure threshold; b) to permit fluid flow from the damper body through the blow-off valve in response to the fluid pressure in the damper body above the predetermined pressure threshold. 2. The bicycle suspension assembly of claim 1, the gas spring including at least a positive gas spring. 3. The bicycle suspension assembly of claim 2 the gas spring further including a negative spring. 4. The bicycle suspension assembly of claim 3 the negative spring comprising a negative gas spring. 5. The bicycle suspension assembly of claim 4 further comprising a bypass valve for allowing gas to flow between the positive gas spring and the negative gas spring. 6. A bicycle suspension assembly, comprising: a damper, the damper comprising: a tube; a piston rod coupled to a piston in sealed, sliding engagement with the tube, the piston and the tube defining a compression fluid chamber and a rebound fluid chamber, wherein a damping fluid moves from the compression chamber to the rebound chamber during compression movement of the suspension assembly and the piston rod occupies a successively greater portion of the tube during the compression movement; an opening communicating with the compression chamber; an inertia valve comprising a slidable inertia mass, the inertia valve having an open position wherein the inertia mass does not block at least a portion of the opening and a flow of damping fluid is permitted through at least a portion of the opening, the inertia valve normally biased to a closed position wherein the inertia mass is positioned to block more of the opening such that the flow of damping fluid through the opening is reduced relative to the open position of the inertia valve, the inertia valve further comprising a valve shaft surrounded by the inertia mass and guiding translational motion of the inertia mass; a gas spring, the gas spring partially defined by a pressurized air sleeve at least partially surrounding and in telescoping engagement with the tube and configured to apply a force to the suspension assembly tending to extend the piston rod relative to the tube; wherein the spring and the damper cooperate, in the absence of a terrain-induced upward acceleration of the suspension assembly above a predetermined threshold sufficient to move the inertia valve to the open position, to prevent significant compressive movement of the suspension assembly in response to rider-induced pedaling forces on the suspension assembly, and wherein the inertia valve is movable to the open position in response to a terrain-induced upward acceleration of the suspension assembly above the threshold to permit significant compressive movement of the suspension assembly. 7. The bicycle suspension assembly of claim 6, the gas spring including at least a positive gas spring. 8. The bicycle suspension assembly of claim 7, the gas spring including a negative spring. 9. The bicycle suspension assembly of claim 8, the negative spring comprising a negative gas spring. 10. The bicycle suspension assembly of claim 9, further comprising a bypass valve for allowing gas to flow between the positive gas spring and the negative gas spring. 11. An acceleration-responsive bicycle suspension assembly, comprising: a damper body having a bore partially defining a first chamber containing a damping fluid; a second chamber in fluid communication with the first chamber; a compression fluid flow circuit extending from the first chamber to the second chamber for conveying fluid flow during a compression stroke; a piston rod having a first end positioned within the first chamber through a sealed opening and a second end positioned outside of the first chamber, wherein a translational movement of the piston rod in a direction, such that an additional portion of the piston rod enters the first chamber, expels an amount of damping fluid out of the first chamber and into the second chamber via the compression fluid flow circuit; an acceleration-responsive inertia valve at least partially controlling fluid flow resistance of the compression fluid flow circuit, the inertia valve comprising: a) an inertia mass, slidably movable in response to acceleration, having at least a first position and a second position, the first position at least partially blocking fluid flow from the first chamber to the second chamber through the inertia valve, and the second position providing less blockage of fluid flow from the first chamber to the second chamber through the inertia valve; and b) a spring biasing the inertia mass towards the first position; and an air sleeve at least partially-surrounding and in telescoping engagement with the damper body, the air sleeve partially defining a pressurized air chamber for producing a force tending to extend the damper, wherein: the bore of the damper body defines a damper primary axis; an axis of motion between the first position of the inertia mass and the second position of the inertia mass defines an inertia valve operational axis; and the damper primary axis and the inertia valve operational axis are non-coaxial and non-parallel; and a valve shaft surrounded by the inertia mass and guiding translational motion of the inertia mass. 12. The bicycle suspension assembly of claim 11, further comprising a pressure relief valve permitting fluid flow, regardless of the position of the inertia mass, when pressure in the damping chamber exceeds a threshold. 13. A bicycle, comprising: a frame; a pedal crank assembly coupled to the frame and configured to be driven by rider-induced pedaling forces; a wheel, and a suspension assembly operably interposed between the frame and the wheel, the suspension assembly comprising: a damper, the damper comprising a damper tube containing damping fluid and a piston rod supporting a piston in sliding engagement with the damper tube, the piston and the damper tube at least partially defining a compression chamber of the damper, wherein the piston rod occupies an increasing volume of the damper tube during compression movement of the suspension assembly, the damper additionally comprising an inertia valve comprising an inertia mass, the inertia mass normally biased to a closed position wherein the inertia mass is adjacent an opening to the compression chamber such that fluid flow through the opening is inhibited, and the inertia mass is movable to an open position wherein the inertia mass is not adjacent the opening such that fluid flow through the opening is not inhibited, the damper additionally comprising a blow-off valve configured to: a) substantially inhibit fluid flow from the damper tube through the blow-off valve in response to fluid pressure in the damper tube below a predetermined pressure threshold; b) to permit fluid flow from the damper tube through the blow-off valve in response to the fluid pressure in the damper tube above the predetermined pressure threshold; a gas spring, containing pressurized gas, configured to apply a force to the suspension assembly tending to extend the piston rod relative to the damper tube; wherein the inertia valve is configured such that the inertia mass remains in the closed position in response to the rider-induced pedaling forces applied to the frame and wherein the inertia valve is configured such that the inertia mass moves toward the open position in response to a terrain-induced force above a predetermined threshold applied to the wheel. 14. The bicycle of claim 13, wherein the predetermined pressure threshold is configured to be above a level induced by the rider pedaling forces applied to the frame. 15. The bicycle of claim 13 wherein the damper further comprises a reservoir chamber configured to accommodate fluid displaced by the increasing volume occupied by the piston rod during the compression movement of the suspension assembly. 16. The bicycle of claim 15 wherein the damper further comprises a separating barrier, movable in response to the fluid displaced, separating the reservoir chamber from a gas chamber. 17. The bicycle of claim 16 wherein the separating barrier is a floating piston. 18. The bicycle of claim 13 wherein the piston includes at least one fluid flow passage. 19. The bicycle of claim 13 wherein the inertia valve further comprises a valve shaft, surrounded by the inertia mass and guiding sliding motion of the inertia mass, the valve shaft defining at least a portion of a fluid flow path from the compression chamber to the opening. 20. The bicycle of claim 19 wherein the valve shaft defines the opening. 21. The bicycle of claim 20 wherein, with the inertia mass in the open position, fluid displaced by the increasing volume occupied by the piston rod during the compression movement of the suspension assembly exits the opening in a direction that is outward and away from a centerline of the valve shaft. 22. The bicycle of claim 13, wherein at least one of the blow-off valve or the inertia valve are not associated with the piston. 23. The bicycle of claim 13 wherein an upward location of the inertia mass in the closed position is limited by a stop. 24. A bicycle, comprising: a frame; a pedal crank assembly coupled to the frame and configured to be driven by rider-induced pedaling forces; a wheel, and a suspension assembly operably interposed between the frame and the wheel, the suspension assembly comprising: a damper, the damper comprising a damper tube containing damping fluid and a piston rod supporting a piston in sliding engagement with the damper tube, the piston and the damper tube at least partially defining a compression chamber of the damper, wherein the piston rod occupies an increasing volume of the damper tube during compression movement of the suspension assembly, the damper additionally comprising an inertia valve comprising an inertia mass, the inertia mass normally biased to a closed position wherein the inertia mass is adjacent an opening to the compression chamber such that fluid flow through the opening is inhibited, and the inertia mass is movable to an open position wherein the inertia mass is not adjacent the opening such that fluid flow through the opening is not inhibited; a gas spring, containing pressurized gas, configured to apply a force to the suspension assembly tending to extend the piston rod relative to the damper tube; wherein: the inertia valve is configured such that the inertia mass remains in the closed position in response to the rider-induced pedaling forces applied to the frame and wherein the inertia valve is configured such that the inertia mass moves toward the open position in response to a terrain-induced force above a predetermined threshold applied to the wheel, and the inertia valve further comprises a valve shaft, surrounded by the inertia mass and guiding sliding motion of the inertia mass, the valve shaft defining at least a portion of a fluid flow path from the compression chamber to the opening. 25. The bicycle of claim 24 wherein the valve shaft defines the opening. 26. The bicycle of claim 25 wherein, with the inertia mass in the open position, fluid displaced by the increasing volume occupied by the piston rod during the compression movement of the suspension assembly exits the opening in a direction that is outward and away from a centerline of the valve shaft.
Kazmirski Karl C. ; Tyrrell Charles E. ; Steed David ; Huger Rich ; Hoppert Dale ; Johnson Wayne ; Bombrys Timothy E., Acceleration sensitive damping for automotive dampers.
Truchinski Rich (27930 N. Tyler #402 Santa Clarita CA 91351), Exterior adjustable suspension precompression fork cap mechanism for two wheeled vehicles.
Derr Randall L. (Bellbrook OH) Dourson Stephen E. (Dayton OH) Keller ; Jr. Chris F. (Dayton OH) Morgan William S. (Centerville OH), Low level damping valve and method for a semi-active hydraulic damper.
Boyer Scott M. (Valencia CA) Stewart Gerald M. (Camarillo CA) Van Kampen Mark (Tarzana CA) Allen Kirk (Reseda CA), Method for producing a bicycle fork brake arch and legs assembly.
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