Nova Patents
EP1597493A2

Inertia valve shock absorber

Abstract

This record has no abstract on file.

Term

Term ended

Projected expiry passed 23 February 2024, 2.6 years ago.

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65 claims: 14 independent, 51 dependent

  1. 1
    Claims of equivalent WO 2004079222 A2 WHAT IS CLAIMED IS:1. A shock absorber comprising a first fluid chamber, a second fluid chamber and a fluid circuit connecting said first fluid chamber and said second fluid chamber, an inertia valve comprising an inertia mass, said inertia mass movable between a first position and a second position, said inertia valve permitting a first rate of fluid flow through said fluid circuit in said first position of said inertia mass and said inertia valve permitting a second rate of fluid flow through said fluid circuit in said second position of said inertia mass, said second rate of fluid flow being non-equal to said first rate, wherein a leading surface of said inertia mass when moving in a direction from said first position to said second position defines a leading surface area, and wherein a ratio of a mass of said inertia mass to said leading surface area is greater than about 130 grams per square inch.
  2. 7
    A shock absorber comprising a first fluid chamber, a second fluid chamber and a fluid circuit connecting said first fluid chamber and said second fluid chamber, an inertia valve comprising an inertia mass, said inertia mass movable between a first position and a second position, said inertia valve permitting a first rate of fluid flow tlirough said fluid circuit in said first position of said inertia mass and said inertia valve permitting a second rate of fluid flow through said fluid circuit in said second position of said inertia mass, said second rate of fluid flow being non-equal to said first rate, wherein a ratio of a mass of said inertia mass to a volume of said inertia mass is greater than about 148 grams per cubic inch.
  3. 11
    A shock absorber, comprising:a first fluid chamber;a second fluid chamber;a fluid circuit connecting said first fluid chamber and said second fluid chamber;an inertia valve comprising an inertia mass movable between a first position and a second position, said inertia valve permitting a first rate of fluid flow through said fluid circuit in said first position of said inertia mass and said inertia valve permitting a second rate of fluid flow through said fluid circuit in said second position of said inertia mass, said second rate of fluid flow being non-equal to said first rate, wherein at least a portion of said inertia mass comprises tungsten.
  4. 17
    A shock absorber, comprising:a first fluid chamber;a second fluid chamber;a fluid circuit connecting said first fluid chamber and said second fluid chamber;an inertia valve comprising an inertia mass movable between a first position and a second position, said inertia valve permitting a first rate of fluid flow tlirough said fluid circuit in said first position of said inertia mass and said mertia valve pennitting a second rate of fluid flow through said fluid circuit in said second position of said inertia mass, said second rate of fluid flow being non-equal to said first rate, wherein said inertia mass comprises a first portion and a second portion, said first portion being constructed from a first material having a first density, said second portion being constructed from a second material having a second density, said second density being greater than said first density.
  5. 25
    A shock absorber, comprising:a first fluid chamber;a second fluid chamber;a fluid circuit connecting said first fluid chamber and said second fluid chamber;an inertia valve comprising an inertia mass moveable between a first position and a second position, said inertia valve pennitting a first rate of fluid flow through said fluid circuit in said first position of said inertia mass and said inertia valve pennitting a second rate of fluid flow through said fluid circuit in said second position of said inertia mass, said second rate of fluid flow being non-equal to said first rate, said inertia mass comprising a collapsible section defining at least a portion of an external surface of said inertia mass, said collapsible section having a first orientation when said inertia mass is moving in a first direction from said first position to said second position and said collapsible section having a second orientation when said inertia mass is moving in a second direction from said second position to said first position, said inertia mass having a first flow resistance when said collapsible section is in said first orientation and a second flow resistance when said collapsible section is in said second orientation, said second flow resistance being greater than said first flow resistance.
  6. 30
    A shock absorber, comprising:a first fluid chamber;a second fluid chamber;a fluid circuit connecting said first fluid chamber and said second fluid chamber;an inertia valve comprising an inertia mass moveable between a first position and a second position, said inertia valve permitting a first rate of fluid flow tlirough said fluid circuit in said first position of said inertia mass and said inertia valve pennitting a second rate of fluid flow through said fluid circuit in said second position of said inertia mass, said second rate of fluid flow being non-equal to said first rate, said inertia mass comprising first and second opposing end surfaces oriented generally normal to a direction of motion of said inertia mass and a side wall extending between said first and second end surfaces, said inertia mass additionally comprising at least one movable, annular skirt extending from said side wall, wherein at least an outer portion of said at least one skirt moves toward said side wall when said inertia mass moves in a first direction and moves away from said side wall when said inertia mass moves in a second direction opposite said first direction, said at least one skirt increasing a fluid flow drag coefficient of said inertia mass when moving in said second direction compared to movement of said inertia mass in said first direction.
  7. 35
    A method of delaying an inertia valve within a shock absorber from returning to a closed position after an acceleration force acting on said inertia valve diminishes, comprising providing an inertia mass movable in a first direction from a closed position toward an open position of said inertia valve in response to an acceleration force above a predetennined threshold and movable in a second direction from said open position toward said closed position of said inertia valve when said acceleration force is below said threshold, configuring said inertia mass to have a first fluid flow drag coefficient when moving in said first direction, providing said inertia mass with a drag member configured to increase said fluid flow drag coefficient when said inertia mass moves in said second direction to delay said inertia valve from returning to said closed position until a period of time after said acceleration force is reduced to, and remains, below said threshold.
  8. 36
    A shock absorber, comprising:a first fluid chamber;a second fluid chamber;a fluid circuit connecting said first fluid chamber and said second fluid chamber;an inertia valve comprising an inertia mass and a stop, said inertia mass being movable between a first position and a second position, said inertia valve permitting a first rate of fluid flow through said fluid circuit in said first position of said inertia mass and said inertia valve permitting a second rate of fluid flow through said fluid circuit in said second position of said inertia mass, said second rate of fluid flow being non-equal to said first rate, one of said inertia mass and said stop defining a pocket for receiving the other of said inertia mass and said stop in said second position of said inertia mass;a first refill passage connecting said second fluid chamber and said pocket, wherein said first refill passage restricts fluid flow therethrough from said second fluid chamber to said pocket to provide a delay in movement of said inertia mass toward said first position;a second refill passage connecting said second fluid chamber and said pocket;and a pressure actuated valve substantially preventing fluid flow between said second fluid chamber and said pocket tlirough said second refill passage below a predetermined tlireshold pressure differential between said second fluid chamber and said first fluid chamber and permitting fluid flow between said second fluid chamber and said pocket through said second refill passage at, or above, a predetermined tlireshold pressure differential between said second fluid chamber and said first fluid chamber, thereby reducing or eliminating said delay.
  9. 38
    A method of delaying an inertia valve within a shock absorber from returning to a closed position after an acceleration force acting on said inertia valve diminishes, comprising providing an inertia mass movable in a first direction from a closed position toward an open position of said inertia valve in response to an acceleration force above a predetennined threshold and movable in a second direction from said open position toward said closed position of said inertia valve when said acceleration force is below said tlireshold, providing a first delay force tending to resist movement of said inertia mass in said second direction when a fluid pressure differential between a first chamber and a second chamber within said shock absorber is below a predetermined threshold, and providing a second delay force, less than said first delay force, when said fluid pressure differential is at, or above, said predetermined threshold.
  10. 41
    A shock absorber, comprising:a first fluid chamber;a second fluid chamber;a fluid circuit connecting said first fluid chamber and said second fluid chamber;an inertia valve comprising an inertia mass and a moveable stop, said inertia mass being movable between an open position and a closed position and said moveable stop being movable between a first position and a second position, said inertia mass being biased to move toward said closed position at substantially a first rate, said moveable stop and said inertia mass cooperating to define a pocket configured to receive the other of said moveable stop and said inertia mass in said open position of said inertia mass and said first position of said moveable stop wherein movement of said inertia mass toward said closed position is restrained to a second rate less than said first rate;wherein said moveable stop moves from said first position to said second position in response to a pressure within said second fluid chamber being greater than a pressure within said first fluid chamber by at least a predetermined pressure differential threshold thereby permitting said inertia mass to return to said closed position at substantially said first rate.
  11. 42
    A damper, comprising:a first fluid chamber;a second fluid chamber;a fluid circuit connecting said first fluid chamber and said second fluid chamber;an acceleration sensor configured to produce a control signal in response to an acceleration force above a first predetermined threshold;an inertia valve comprising an inertia mass, said inertia mass at least partially comprising a magnetic material and being movable between a first position and a second position, said inertia valve permitting a first rate of fluid flow through said fluid circuit in said first position of said inertia mass and said inertia valve permitting a second rate of fluid flow tlirough said fluid circuit in said second position of said inertia mass, said second rate of fluid flow being non-equal to said first rate, wherein said inertia mass moves in a direction from said first position to said second position in response to an acceleration force above a second predetermined threshold;an electromagnetic force generator capable of retaining said inertia mass in said second position;and a control system configured to receive said control signal from said sensor and selectively activate said electromagnetic element in response to said control signal to retain said inertia mass in said second position for a predetermined period of time after said acceleration force diminishes below said first predetermined threshold.
  12. 47
    A bicycle, comprising:a front wheel defining a hub axis;a rear wheel;a main frame;an acceleration sensor mounted for movement with said hub axis of said front wheel, said sensor being configured to produce a control signal in response to sensing an acceleration above a predetermined threshold;a shock absorber operably positioned between said rear wheel and said frame, said shock absorber comprising a valve anangement configured to receive said control signal from said sensor and to selectively alter a damping rate of said shock absorber in response to said control signal.
  13. 55
    A bicycle, comprising:a front wheel defining a hub axis;a rear wheel;a main frame;an acceleration sensor mounted for movement with said hub axis of said front wheel, said sensor being configured to produce a control signal in response to sensing an acceleration above a predetermined threshold;a shock absorber operably positioned between said front wheel and said frame, said shock absorber comprising a valve anangement configured to receive said control signal from said sensor and to selectively alter a damping rate of said shock absorber in response to said control signal.
  14. 62
    A method of altering a rate of damping of a bicycle rear wheel shock absorber, comprising sensing an acceleration force above a predetermined threshold acting on a hub axis of a front wheel of said bicycle, providing a valve assembly within said rear wheel shock absorber configured to selectively alter a damping rate of said rear wheel shock absorber, and altering said damping rate of said rear wheel shock absorber in response to an acceleration force above said predetermined threshold.