Claims
- 1. A gas damped deceleration sensor comprising:
- a movable mass;
- means for supporting said mass for movement in response to deceleration;
- means for sensing a predetermined amount of said movement of said mass to indicate a predetermined amount of deceleration over a time interval;
- a structure having a first surface;
- a flexible damping disk assembly having a second surface, said damping disk assembly having a position wherein said second surface is engaged with a portion of said first surface to define a space between said structure and said damping disk assembly;
- said damping disk assembly being connected to said mass to flex relative to said base from said position to enlarge said space and to cause a pressure reduction in said space in response to said movement of said mass, said pressure reduction restraining movement of said mass; and
- said damping disk assembly comprising a flexible sealing disk having said second surface, and a flexible spring disk which biases said flexible sealing disk toward said first surface when said damping disk assembly is in said position.
- 2. A gas damped sensor mechanism comprising:
- a base having a base surface;
- a mass;
- means for supporting said mass for movement relative to said base;
- means for sensing a predetermined amount of movement of said mass relative to said base;
- a damping assembly connected to said mass for movement with said mass relative to said base, said damping assembly having an initial position wherein said damping assembly and said base surface define a chamber having an initial volume, movement of said damping assembly relative to said base increasing the volume of said chamber and causing a pressure reduction in said chamber, said pressure reduction restraining movement of said damping assembly and said mass relative to said base; and
- said damping assembly comprising a plurality of damping members including a flexible damping member.
- 3. A sensor mechanism as defined in claim 2 wherein said flexible damping member is a disk.
- 4. A sensor mechanism as defined in claim 2 wherein said damping members further include a flexible spring member which biases said flexible damping member into a flexed condition when said damping assembly is in said initial position, said flexible damping member moving from said flexed condition toward an unflexed condition when said damping assembly moves to increase the volume of said chamber.
- 5. A sensor mechanism as defined in claim 4 further comprising a rigid damping member connected to said mass for movement with said mass relative to said base.
- 6. A sensor mechanism as defined in claim 5 wherein said rigid damping member is a disk, said flexible damping member being a disk with a diameter greater than the diameter of said rigid damping member, said flexible damping member being connected to said mass coaxially with said rigid damping member and being in overlying contact with said rigid damping member when in said unflexed condition.
- 7. A sensor mechanism as defined in claim 2 further comprising a rigid damping member connected to said mass at a position adjacent to said flexible damping member, and spacing means for holding said flexible damping member in a flexed condition throughout movement of said damping assembly relative to said base.
- 8. A sensor mechanism as defined in claim 7 wherein said rigid damping member and said flexible damping member are disks coaxially connected to said mass, said spacing means comprising an axially projecting surface portion of said flexible damping member.
- 9. A sensor mechanism as defined in claim 7 wherein said rigid damping member and said flexible damping member are disks coaxially connected to said mass, said spacing means comprising an axially projecting surface portion of said rigid damping member.
- 10. A sensor mechanism as defined in claim 2 wherein said damping members further include a rigid damping member, said flexible damping member having a position in overlying surface contact with said rigid damping member.
- 11. A sensor mechanism as defined in claim 10 wherein said rigid damping member and said flexible damping member are disks, said flexible damping member having a peripheral portion extending radially beyond the periphery of said rigid damping member.
- 12. A sensor mechanism as defined in claim 10 wherein said flexible damping member moves into increasing overlying surface contact with said rigid damping member when said damping assembly moves to increase the volume of said chamber.
- 13. A sensor mechanism as defined in claim 12 wherein said flexible damping member moves into a flat, unflexed condition in overlying surface contact with said rigid damping member when said damping assembly moves to increase the volume of said chamber.
- 14. A sensor mechanism as defined in claim 1 wherein said sensing means comprises means for defining an electrical current path along which electric current flows in response to a predetermined amount of movement of said mass relative to said base.
- 15. A gas damped sensor mechanism comprising:
- a base having a first surface;
- a mass;
- means for supporting said mass for movement relative to said base;
- means for sensing a predetermined amount of movement of said mass relative to said base;
- a movable damping assembly having a second surface facing said first surface, having an initial position wherein said second surface is engaged with said first surface to define a space having an initial volume between said base and said damping assembly, and having an open position wherein said second surface is disengaged from said first surface;
- said damping assembly being connected to said mass to move from said initial position toward said open position to enlarge the volume of said space and to cause a pressure reduction within said space in response to a first amount of movement of said mass relative to said base and to move into said open position in response to a second amount of movement of said mass relative to said base, said pressure reduction restraining movement of said mass relative to said base; and
- said damping assembly comprising a flexible sealing layer having said second surface, and a flexible spring layer biasing said flexible sealing layer against said first surface when said damping assembly is in said initial position.
- 16. A sensor mechanism as defined in claim 15 wherein said spring layer of said damping assembly biases said sealing layer against said first surface during said first amount of movement of said mass.
- 17. A sensor mechanism as defined in claim 15 wherein said spring layer of said damping assembly biases said sealing layer toward said first surface throughout said first amount of movement of said mass.
- 18. A sensor mechanism as defined in claim 15 wherein said first surface on said base defines a cavity having an opening, said first surface having a portion extending around said opening, said second surface on said sealing layer being in contact with said portion of said first surface and being flexed inwardly of said opening to define said space within said cavity when said damping assembly is in said initial position.
- 19. A sensor mechanism as defined in claim 15 wherein said sensing means comprises means for defining an electrical current path along which electric current flows in response to a predetermined amount of movement of said mass relative to said base.
- 20. A sensor mechanism as defined in claim 15 wherein said sealing layer and said spring layer are disk-shaped.
- 21. A sensor mechanism as defined in claim 15 wherein said damping assembly further comprises a rigid damping member, said second surface on said sealing layer being in overlying contact with said rigid damping member when said damping assembly is in said open position.
- 22. A sensor mechanism as defined in claim 21 wherein said second surface on said sealing layer is in overlying contact with said rigid damping member during said first amount of movement of said mass, such overlying surface contact increasing during said first amount of movement of said mass.
- 23. A gas damped sensor mechanism comprising:
- a base having a first surface;
- a mass;
- means for supporting said mass for movement relative to said base;
- means for sensing a predetermined amount of movement of said mass relative to said base;
- a movable flexible damping assembly having a second surface, said flexible damping assembly having an initial position wherein said second surface is engaged with said first surface to define a space having an initial volume between said base and said flexible damping assembly;
- said flexible damping assembly being connected to said mass to move from said initial position to enlarge the volume of said space and to cause a pressure reduction in said space in response to movement of said mass relative to said base, said pressure reduction restraining movement of said mass relative to said base; and
- said flexible damping assembly comprising a flexible sealing member having said second surface, and a flexible spring member which biases said flexible sealing member toward said first surface when said flexible damping assembly is in said initial position.
- 24. A sensor mechanism as defined in claim 23 wherein said flexible sealing member and said flexible spring member are disks.
- 25. A sensor mechanism as defined in claim 23 wherein said flexible sealing member is located between said flexible spring member and said base.
- 26. A sensor mechanism as defined in claim 23 wherein said mass has an axis and is movable in a direction along said axis relative to said base, said flexible sealing member comprising a pair of overlying disk-shaped parts coaxially connected to said mass.
- 27. A sensor mechanism as defined in claim 26 wherein each of said overlying disk-shaped parts has radially extending slots defining circumferentially spaced segments of such part, the slots of one part being offset circumferentially from the slots of the other part.
- 28. A sensor mechanism as defined in claim 27 wherein said flexible spring member is disk-shaped and is coaxially connected to said mass in a position to overlie said flexible sealing member.
- 29. A sensor mechanism as defined in claim 28 wherein said flexible spring member has radially extending slots defining circumferentially spaced segments of said flexible spring member.
- 30. A sensor mechanism as defined in claim 29 further comprising a rigid disk coaxially connected to said mass, said flexible sealing member having a diameter greater than the diameter of said rigid disk and having a position in overlying surface contact with said rigid disk.
- 31. A sensor mechanism as defined in claim 23 wherein said mass has an axis, said flexible spring member is a disk coaxially connected to said mass, said flexible sealing member is a disk coaxially connected to said mass between said flexible spring member and said base, said sensor mechanism further comprising a rigid disk coaxially connected to said mass between said flexible sealing member and said base.
- 32. A sensor mechanism as defined in claim 31 wherein said rigid disk has a diameter less than the diameter of said flexible sealing member, and further comprising means for holding said flexible sealing member in a flexed condition throughout movement of said mass relative to said base.
- 33. A sensor mechanism as defined in claim 32 wherein said holding means comprises an axially projecting surface portion of said flexible sealing member.
- 34. A sensor mechanism as defined in claim 32 wherein said holding means comprises an axially projecting surface portion of said rigid disk.
- 35. A sensor mechanism as defined in claim 23 wherein said sensing means comprises means for defining an electrical current path along which electric current flows in response to said predetermined amount of movement of said mass.
- 36. A gas damped sensor mechanism comprising:
- a base having a first surface;
- a mass;
- means for supporting said mass for movement relative to said base;
- means for sensing a predetermined amount of movement of said mass relative to said base;
- a flexible sealing member having a second surface which sealingly engages said first surface to block the flow of damping gas past said flexible sealing member between said surfaces;
- said flexible sealing member being connected to said mass to move said second surface out of engagement with said first surface upon movement of said mass relative to said base; and
- said flexible sealing member comprising a pair of sealing elements, each of said sealing elements having at least one slot defining spaced apart segments of such sealing element, said sealing elements being in overlying contact with each other with the slots of one sealing element offset from the slots of the other sealing element.
- 37. A sensor mechanism as defined in claim 36 wherein said sealing elements are coaxial disks in overlying contact with each other.
- 38. A sensor mechanism as defined in claim 37 wherein said slots extend radially, said segments being spaced apart circumferentially by said slots.
- 39. A sensor mechanism as defined in claim 38 wherein said sealing elements have equal diameters.
- 40. A sensor mechanism as defined in claim 37 further comprising a spring member having a position in overlying contact with said flexible sealing member to bias said second surface into engagement with said first surface.
- 41. A sensor mechanism as defined in claim 40 wherein said sealing elements and said spring member are coaxial disks.
- 42. A sensor mechanism as defined in claim 36 wherein said sensing means comprises means for defining an electrical current path along which electric current flows in response to a predetermined amount of movement of said mass relative to said base.
- 43. A gas damped deceleration sensor comprising:
- a base having a first surface defining a cavity with an opening, said first surface having a portion extending around said opening;
- a mass;
- means for supporting said mass for inertial movement relative to said base in response to deceleration of said base;
- means for sensing a predetermined amount of movement of said mass relative to said base;
- a movable, flexible damping member having a second surface facing said first surface, having an initial position wherein said second surface contacts said portion of said first surface to define a space within said cavity between said base and said damping member, said damping member being flexed inwardly of aid opening when in said initial position, and having an open position wherein said second surface does not contact said first surface;
- said damping member being connected to said mass to move with said mass relative to said base, said damping member flexing outwardly relative to said opening to enlarge said space and to cause a pressure reduction within said space in response to a first amount of said movement of said mass, and moving away from said first surface into said open position in response to a second amount of said movement of said mass, said pressure reduction restraining movement of said mass relative to said base.
- 44. A sensor as defined in claim 43 further comprising a flexible spring member contacting said damping member to bias said damping member against said portion of said first surface during said first amount of movement of said mass.
- 45. A sensor as defined in claim 43 further comprising a rigid damping member connected to said mass, said flexible damping member flexing into increasing surface contact with said rigid damping member when flexing outwardly relative to said opening.
- 46. A sensor as defined in claim 43 wherein said sensing means comprises means for defining an electrical current path along which electric current flows in response to a predetermined amount of movement of said mass relative to said base.
- 47. An assembly for damping movement of a mass that moves inertially in a gas damped deceleration sensor in response to deceleration of the sensor, said assembly comprising:
- a rigid damping member;
- a flexible damping member; and
- means for connecting said damping members to the mass for said damping members to move with the mass when the mass moves inertially in the deceleration switch, and for said flexible damping member to be flexible into overlying surface contact with said rigid damping member during such movement.
- 48. An assembly as defined in claim 47 wherein said rigid damping member is a disk having a first diameter, said flexible damping member being a disk coaxial with said rigid damping member and having a second diameter greater than said first diameter.
- 49. An assembly as defined in claim 48 wherein said flexible damping member comprises a flexible sealing layer and a flexible spring layer, said flexible spring layer being in overlying surface contact with said flexible sealing layer to resist flexing movement of said flexible sealing layer out of contact with said rigid damping member.
- 50. An assembly defined in claim 49 wherein said flexible sealing layer comprises a pair of overlying disk-shaped elements, said elements having a common axis and slots extending radially from said axis to define spaced-apart segments of said elements, the slots of each element being offset from the slots of other element so that said segments block the flow of damping gas through said flexible sealing layer.
- 51. An assembly as defined in claim 49 wherein said flexible spring layer and said flexible sealing layer have equal diameters.
- 52. An assembly as defined in claim 47 wherein said damping members are coaxial disks, said connecting means comprising coaxial openings through said damping members.
Parent Case Info
This is a continuation of application Ser. No. 491,110 filed on Mar. 9, 1990, now abandoned.
US Referenced Citations (4)
Continuations (1)
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Number |
Date |
Country |
| Parent |
491110 |
Mar 1990 |
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