Claims
- 1. A shock-absorbing apparatus for coupling a binding to a board, the apparatus comprising:a bottom plate for coupling to said board; a top plate to receive the binding; and a plurality of assemblies coupling said bottom plate to said top plate, wherein each of said plurality of assemblies further comprises a bearing assembly and a biasing assembly, said bearing assembly disposed coaxially with said biasing assembly, said biasing assembly oriented to press against said bottom plate; and wherein said bearing assembly includes a top portion for engaging said bottom plate and a connecting assembly having a lid and a socket, the lid and socket forming a first cavity in said connecting assembly, said first cavity having a connector disposed therein, the connector having an attachment portion protruding through said lid to engage an aperture in said top plate.
- 2. The apparatus in accordance with claim 1 wherein said connector further comprises a head portion opposite said attachment portion, said head portion encapsulated by said lid and said socket.
- 3. The apparatus of claim 1 wherein said biasing assembly includes said socket and a bottom portion on said bottom plate.
- 4. The apparatus in accordance with claim 3, wherein said biasing assembly further includes a biasing element disposed between said socket and said bottom portion.
- 5. An apparatus in accordance with claim 4, wherein said biasing element comprises at least one spiral spring.
- 6. An apparatus in accordance with claim 4, wherein said biasing element provides full compression at a range of between 100 to 300 pounds.
- 7. An apparatus in accordance with claim 4, wherein said biasing element is made of an elastomeric material.
- 8. The apparatus in accordance claim 4, wherein said top portion and said bottom portion are threaded so as to engage one another to form a second cavity in said biasing assembly, said second cavity having said bearing and biasing assembly.
- 9. An apparatus in accordance with claim 3, wherein said top portion has a first end and a second end, said first end having an inner edge defining a first aperture and said second end having an inner edge defining a second aperture, said bottom portion having a first end having an inner edge defining a third aperture, and said socket having a first outer edge and a second outer edge wherein said first outer edge is smaller in diameter than said second outer edge,wherein said first aperture is of a size allowing said first outer edge of said socket to extend through said first end while of a size precluding said second outer edge of said socket from extending through said first end, said second aperture is of a size allowing said second end of said socket to extend through said second aperture, and said third aperture is of a size sufficient to receive said biasing element.
- 10. An apparatus in accordance with claim 9, wherein said bottom portion of said biasing assembly further includes an outer edge of a size sufficient to fit within said second aperture of said top portion.
- 11. An apparatus in accordance with claim 10, wherein said top portion further includes a threaded inner surface bounded by said second aperture and said bottom portion has a threaded outer surface bounded by said outer edge, said threaded inner surface interlocking with said threaded outer surface of said bottom portion.
- 12. An apparatus in accordance with claim 9, wherein the distance between said first end of said top portion and said second end of said top portion defines a minimum height between said bottom plate and said top plate.
- 13. A shock-absorbing apparatus for coupling a binding to a board, the apparatus comprising:a bottom plate for coupling to said board; and a plurality of assemblies coupling said bottom plate to said binding, wherein each of said plurality of assemblies further comprises a bearing assembly and a biasing assembly, said bearing assembly disposed coaxially with said biasing assembly, said biasing assembly oriented to press against said bottom plate, wherein said bearing assembly includes a top portion for engaging said bottom plate and a connecting assembly having a lid and a socket, the lid and socket forming a first cavity in said connecting assembly, said first cavity having a connector disposed therein, the connector having an attachment portion protruding through said lid and engaging an aperture in said binding.
- 14. An apparatus in accordance with claim 13, wherein said connector further comprises a head portion opposite said attachment portion, said head portion encapsulated by said lid and said socket.
- 15. The apparatus of claim 13, wherein said biasing assembly includes said socket and a bottom portion on said bottom plate.
- 16. The apparatus in accordance with claim 15, wherein said biasing assembly further includes a biasing element disposed between said socket and said bottom portion.
- 17. An apparatus in accordance with claim 16, wherein said biasing element comprises at least one spiral spring.
- 18. An apparatus in accordance with claim 16, wherein said biasing element provides full compression at a range of between 100 to 300 pounds.
- 19. An apparatus in accordance with claim 16, wherein said biasing element is made of an elastomeric material.
- 20. The apparatus in accordance with claim 16, wherein said top portion and said bottom portion are threaded so as to engage one another to form a second cavity in said biasing assembly, said second cavity having said bearing assembly and said biasing element disposed therein.
- 21. An apparatus in accordance with claim 15, wherein said top portion has a first end and a second end, said first end having an inner edge defining a first aperture and said second end having an inner edge defining a second aperture, said bottom portion having a first end having an inner edge defining a third aperture, and said socket having a first outer edge and a second outer edge wherein said first outer edge is smaller in diameter than said second outer edge,wherein said first aperture is of a size allowing said first outer edge of said socket to extend through said first end while of a size precluding said second outer edge of said socket from extending through said first end, said second aperture is of a size allowing said second end of said socket to extend through said second aperture, and said third aperture is of a size sufficient to receive said biasing element.
- 22. An apparatus in accordance with claim 21, wherein said bottom portion of said biasing assembly further includes an outer edge of a size sufficient to fit within said second aperture of said top portion.
- 23. An apparatus in accordance with claim 22, wherein said top portion further includes a threaded inner surface bounded by said second aperture and said bottom portion has a threaded outer surface bounded by said outer edge, said threaded inner surface interlocking with said threaded outer surface of said bottom portion.
- 24. An apparatus in accordance with claim 21, wherein the distance between said first end of said top portion and said second end of said top portion defines a minimum height between said bottom plate and said binding.
- 25. A shock-absorbing apparatus for coupling a binding to a board, the apparatus comprising:a bottom plate for coupling to said board; and a plurality of assemblies coupling said bottom plate to said binding, wherein each of said plurality of assemblies further comprises a bearing assembly and a biasing assembly, said bearing assembly disposed coaxially with said biasing assembly, said biasing assembly oriented to press against said bottom plate, wherein said bottom plate includes a circular shaped hub having a bottom surface and a top surface, said bottom surface having a plurality of grooves to receive a plurality of teeth on a circularly shaped surface of said bottom plate to secure said bottom plate to the board, the circularly shaped surface being rotatable about the hub portion.
- 26. The apparatus in accordance with claim 25, wherein said hub includes at least one aperture for mounting said hub to the board.
- 27. A method for coupling a binding to aboard, comprising:coupling a bottom plate to said board; connecting a top plate to said binding; and attaching a plurality of assemblies between said bottom plate and said top plate to couple said bottom plate to said top plate, wherein each of said plurality of assemblies further comprises a bearing assembly and a biasing assembly, said bearing assembly disposed coaxially with said biasing assembly, said biasing assembly oriented to press against said bottom plate, wherein said bearing assembly includes a top portion and a connecting assembly having a lid and a socket.
- 28. The method of claim 27, further comprising engaging said top portion with said bottom plate thereby forming a first cavity in said connecting assembly with said lid and said socket.
- 29. The method of claim 28, further comprising disposing a connector within said first cavity, said connector having an attachment portion and a head portion, said attachment portion protruding through said lid to engage an aperture in said top plate, said head portion encapsulated by said lid and said socket.
- 30. The method of claim 28, wherein said biasing assembly includes disposing a biasing element between said socket and a bottom portion on said bottom plate.
- 31. The method of claim 30, wherein said biasing element comprises at least one spiral spring.
- 32. The method of claim 31, wherein said biasing element provides full compression at a range of between 100 to 300 pounds.
- 33. The method of claim 31, wherein said biasing element is made of an elastomeric material.
- 34. The method of claim 30 further including engaging said top portion and said bottom portion thereby forming a second cavity to encapsulate said bearing assembly and said biasing assembly.
- 35. The method of claim 30, wherein said top portion has a first end and a second end, said first end having an inner edge defining a first aperture and said second end having an inner edge defining a second aperture, said bottom portion having a first end having an inner edge defining a third aperture, and said socket having a first outer edge and a second outer edge wherein said first outer edge is smaller in diameter than said second outer edge,wherein said first aperture is of a size allowing said first outer edge of said socket to extend through said first end while of a size precluding said second outer edge of said socket from extending through said first end, said second aperture is of a size allowing said second end of said socket to extend through said second aperture, and said third aperture is of a size sufficient to receive said biasing element.
- 36. The method of claim 35, wherein said bottom portion of said biasing assembly further includes an outer edge of a size sufficient to fit within said second aperture of said top portion.
- 37. The method of claim 34 further comprising mounting a circular shaped hub to said board, said circular shaped hub having a bottom surface and a top surface, said bottom surface having a plurality of grooves to receive a plurality of teeth on a circularly shaped surface of said bottom plate to secure said bottom plate to the board, the circularly shaped surface being rotatable about the hub portion.
- 38. A method for coupling a binding to a board, comprising:coupling a bottom plate to said board; and attaching a plurality of assemblies between said bottom plate and said binding to couple said bottom plate to said binding, wherein each of said plurality of assemblies further comprises a bearing assembly and a biasing assembly, said bearing assembly disposed coaxially with said biasing assembly, said biasing assembly oriented to press against said bottom plate, wherein said bearing assembly includes a top portion and a connecting assembly having a lid and a socket.
- 39. The method of claim 38 further comprising engaging said lid and said socket thereby forming a first cavity in said connecting assembly.
- 40. The method of claim 39 further comprising,disposing a connector within said first cavity, said connector having an attachment portion and a head portion, said attachment portion protruding through said lid and engaging an aperture in said top plate, said head portion encapsulated by said lid and said socket.
- 41. The method of claim 39, wherein said biasing assembly includes disposing a biasing element between said socket and a bottom portion on said bottom plate.
- 42. The method of claim 41, wherein said biasing element comprises at least one spiral spring.
- 43. The method of claim 41, wherein said biasing element provides full compression at a range of between 100 to 300 pounds.
- 44. The method of claim 41, wherein said biasing element is made of an elastomeric material.
- 45. The method of claim 41 further including engaging said top portion and said bottom portion thereby forming a second cavity to encapsulate said biasing assembly and said bearing assembly.
- 46. The method of claim 40, wherein said top portion has a first end and a second end, said first end having an inner edge defining a first aperture and said second end having an inner edge defining a second aperture, said bottom portion having a first end having an inner edge defining a third aperture, and said socket having a first outer edge and a second outer edge wherein said first outer edge is smaller in diameter than said second outer edge,wherein said first aperture is of a size allowing said first outer edge of said socket to extend through said first end while of a size precluding said second outer edge of said socket from extending through said first end, said second aperture is of a size allowing said second end of said socket to extend through said second aperture, and said third aperture is of a size sufficient to receive said biasing element.
- 47. The method of claim 46, wherein said bottom portion of said biasing assembly further includes an outer edge of a size sufficient to fit within said second aperture of said top portion.
- 48. A shock-absorbing apparatus for coupling a binding to a board, the apparatus comprising:means for coupling a bottom plate to said board; means for connecting a top plate to said binding; and means for attaching a plurality of assemblies between said bottom plate and said top plate to couple said bottom plate to said top plate, wherein each of said plurality of assemblies further comprises a bearing assembly and a biasing assembly, said bearing assembly disposed coaxially with said biasing assembly, said biasing assembly oriented to press against said bottom plate, wherein said bearing assembly includes a top portion and a connecting assembly having a lid and a socket.
- 49. The apparatus of claim 48 further comprising means for engaging said top portion with said bottom plate thereby forming a first cavity in said connecting assembly with said lid and said socket.
- 50. The apparatus of claim 49 further comprising means for disposing a connector within said first cavity, said connector having an attachment portion and a head portion, said attachment portion protruding through said lid to engage an aperture in said top plate, said head portion encapsulated by said lid and said socket.
- 51. The apparatus of claim 49, wherein said biasing assembly includes disposing a biasing element between said socket and a bottom portion on said bottom plate.
- 52. The apparatus of claim 51, wherein said biasing element comprises at least one spiral spring.
- 53. The apparatus of claim 52, wherein said biasing element provides full compression at a range of between 100 to 300 pounds.
- 54. The apparatus of claim 52, wherein said biasing element is made of an elastomeric material.
- 55. The apparatus of claim 51, further including engaging said top portion and said bottom portion thereby forming a second cavity to encapsulate said bearing assembly and said biasing assembly.
- 56. The apparatus of claim 51, wherein said top portion has a first end and a second end, said first end having an inner edge defining a first aperture and said second end having an inner edge defining a second aperture, said bottom portion having a first end having an inner edge defining a third aperture, and said socket having a first outer edge and a second outer edge wherein said first outer edge is smaller in diameter than said second outer edge,wherein said first aperture is of a size allowing said first outer edge of said socket to extend through said first end while of a size precluding said second outer edge of said socket from extending through said first end, said second aperture is of a size allowing said second end of said socket to extend through said second aperture, and said third aperture is of a size sufficient to receive said biasing element.
- 57. The apparatus of claim 56, wherein said bottom portion of said biasing assembly further includes an outer edge of a size sufficient to fit within said second aperture of said top portion.
- 58. A shock-absorbing apparatus to couple a binding to a board, the apparatus comprising:means for coupling a bottom plate to said board; and means for attaching a plurality of assemblies between said bottom plate and said binding to couple said bottom plate to said binding, wherein each of said plurality of assemblies further comprises a bearing assembly and a biasing assembly, said bearing assembly disposed coaxially with said biasing assembly, said biasing assembly oriented to press against said bottom plate, wherein said bearing assembly includes a top portion and a connecting assembly having a lid and a socket.
- 59. The apparatus of claim 58 further comprising means for engaging said lid and said socket thereby forming a first cavity in said connecting assembly.
- 60. The apparatus of claim 59 further comprising means for disposing a connector within said first cavity, said connector having an attachment portion and a head portion, said attachment portion protruding through said lid and engaging an aperture in said top plate, said head portion encapsulated by said lid and said socket.
- 61. The apparatus of claim 60, wherein said bearing assembly is responsive to mechanical energy encountered by the binding or board during use by engaging the binding to pivot from or move along an axis orthogonal to a top surface of the bottom plate.
- 62. The apparatus of claim 59, wherein said biasing assembly includes means for disposing a biasing element between said socket and a bottom portion on said bottom plate.
- 63. The apparatus of claim 62, wherein said biasing element comprises at least one spiral spring.
- 64. The apparatus of claim 62, wherein said biasing element provides full compression at a range of between 100 to 300 pounds.
- 65. The apparatus of claim 62, wherein said biasing element is made of an elastomeric material.
- 66. The apparatus of claim 62 further including means for engaging said top portion and said bottom portion thereby forming a second cavity to encapsulate said biasing assembly and said bearing assembly.
- 67. The apparatus of claim 62, wherein said top portion has a first end and a second end, said first end having an inner edge defining a first aperture and said second end having an inner edge defining a second aperture, said bottom portion having a first end having an inner edge defining a third aperture, and said socket having a first outer edge and a second outer edge wherein said first outer edge is smaller in diameter than said second outer edge,wherein said first aperture is of a size allowing said first outer edge of said socket to extend through said first end while of a size precluding said second outer edge of said socket from extending through said first end, said second aperture is of a size allowing said second end of said socket to extend through said second aperture, and said third aperture is of a size sufficient to receive said biasing element.
- 68. The apparatus of claim 62, wherein said bottom portion of said biasing assembly further includes an outer edge of a size sufficient to fit within said second aperture of said top portion.
CROSS REFERENCE TO RELATED APPLICATION
This is a continuation-in-part of U.S. patent application Ser. No. 09/108,077, filed Jun. 30, 1998, and now U.S. Pat. No. 6,296,258 and entitled, “SNOWBOARD SHOCK-ABSORBING APPARATUS”, in the name of inventors Michael Timothy Higgins and Robert John Caputo.
US Referenced Citations (20)
Foreign Referenced Citations (1)
Number |
Date |
Country |
WO 9925434 |
May 1999 |
WO |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09/108077 |
Jun 1998 |
US |
Child |
09/918758 |
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US |