Claims
- 1. An impact and torque absorbing prosthetic shock module, comprising:
an outer pylon having a proximal end and a distal end, said outer pylon having at least one internally threaded surface; an inner pylon having a proximal end and a distal end telescopingly engaged with said outer pylon so that an annular interface is formed between said pylons, said inner pylon adapted to move axially and rotationally with respect to said outer pylon; a resilient element within said inner pylon having a proximal end and a distal end and being sized and configured to resist relative axial displacement of said pylons; and a torque-resisting cuff connecting the pylons and providing torsional resistance to relative rotational motion between said pylons.
- 2. The shock module of claim 1, further comprising an internal support for said distal end of said resilient element, said internal support being threadingly engaged within said outer pylon.
- 3. The shock module of claim 1, wherein said resilient element comprises a coil spring.
- 4. The shock module of claim 3, wherein said resilient element further comprises a compressible fluid in combination with said coil spring.
- 5. The shock module of claim 1, wherein said resilient element comprises a compressible fluid.
- 6. The shock module of claim 1, wherein said resilient element comprises a plurality of interconnected disks.
- 7. The shock module of claim 1, wherein said cuff has a proximal end connected to the proximal end of said inner pylon and a distal end connected to said proximal end of said outer pylon.
- 8. The shock module of claim 7, further comprising ring clamps that clamp said cuff to said pylons and provide air tight seals with respect to the entire circumference of said pylons.
- 9. The shock module of claim 1, wherein the proximal end of the inner pylon has an enlarged outside diameter corresponding generally to the outside diameter of the outer pylon.
- 10. The shock module of claim 1, wherein the proximal ends of the inner and outer pylons include grooves for engaging said cuff.
- 11. The shock module of claim 2, wherein said internal support has a proximal end and a distal end, the distal end being externally threaded to engage with said outer pylon.
- 12. The shock module of claim 2, further comprising an end cap threadingly engaged with said outer pylon below said internal support.
- 13. The shock module of claim 12, further comprising an O-ring between the end cap and the spring support.
- 14. The shock module of claim 2, wherein said outer pylon includes two internally threaded surfaces, said first surface threadingly engaging said internal support and an end cap, and said second surface threadingly engaging a cover cap below said end cap.
- 15. The shock module of claim 14, further comprising an O-ring between the cover cap and the end cap.
- 16. The shock module of claim 1, wherein said proximal end of said inner pylon is attachable to a socket for receiving a stump of an amputee, and said distal end of said outer pylon is attachable to a prosthetic foot.
- 17. An impact and torque absorbing prosthetic shock module, comprising:
an elongated upper pylon and an elongated lower pylon adapted to move axially and rotationally with respect to said upper pylon, wherein at least one of said upper and lower pylons has an internally threaded surface; a resilient element having a proximal end and a distal end resisting relative axial displacement of said pylons; and a support member threadingly engaged with said internally threaded surface, said support member providing a base for supporting one of the ends of the resilient element; wherein the longitudinal axis of said upper pylon and the longitudinal axis of said lower pylon are maintained in a generally colinear relationship.
- 18. The shock module of claim 17, further comprising a torque-resisting cuff providing torsional resistance to relative rotational motion between said pylons.
- 19. The shock module of claim 17, wherein said resilient element comprises a coil spring.
- 20. The shock module of claim 17, wherein said resilient element comprises a compressible fluid.
- 21. The shock module of claim 17, wherein said resilient element comprises a plurality of interconnected disks.
- 22. The shock module of claim 17, wherein said internally threaded surface is provided in the lower pylon.
- 23. The shock module of claim 22, wherein said resilient member is proximally attached to said upper pylon and distally attached to said support member.
- 24. The shock module of claim 17, wherein said upper pylon and said lower pylon are telescopingly engaged.
- 25. An impact and torque absorbing prosthetic shock module, comprising:
a first pylon having a proximal end and a distal end; a second pylon having a proximal end and a distal end; and a resilient element comprising a plurality of interconnected disks, the resilient element having a first end connected to the first pylon and a second end connected to the second pylon.
- 26. The shock module of claim 25, further comprising a torque-resisting cuff connected to said pylons and providing torsional resistance to relative rotational motion between said pylons.
- 27. The shock module of claim 25, wherein said first pylon and said second pylon are telescopingly engaged such that an annular interface is formed between said pylons.
- 28. The shock module of claim 26, wherein said cuff has a proximal end attached to the proximal end of said first pylon and a distal end attached to the proximal end of said second pylon.
- 29. The shock module of claim 25, further comprising a support member within one of said first and second pylons, wherein one of the ends of the resilient member is connected to the support member.
- 30. The shock module of claim 25, wherein the plurality of disks are at least partially interconnected by a plurality of buttons.
- 31. The shock module of claim 30, wherein the plurality of disks are at least partially interconnected by a plurality of rings.
- 32. The shock module of claim 31, wherein the plurality of disks are alternatingly connected by said buttons and said rings.
- 33. The shock module of claim 30, wherein said plurality of buttons are each surrounded by a plurality of foam rings.
- 34. The shock module of claim 31, further comprising a plurality of foam disks, each disk being provided within said plurality of rings.
- 35. A vertical shock absorbing prosthesis for a lower limb prosthesis for reducing the impact forces upon a stump of an amputee and adapted to be positioned between the stump and a foot member contacting the ground, comprising:
a substantially rigid outer pylon having a proximal and a distal end; a substantially rigid inner pylon having a proximal and a distal portion, said proximal portion of said inner pylon positioned within said distal end of said outer pylon and adapted for axial motion therein; and a compression member positioned between said proximal end of said outer pylon and said proximal portion of said inner pylon, said compression member having a somewhat gradual, nonlinear deflection response to loading, said compression member compressed when said inner pylon is pushed toward said proximal end of said outer pylon from impact of the foot member with the ground such that energy from a force upon the stump of the amputee is at least partially captured by said compression member, said compression member releasing the stored energy upon removal of the force to restore said inner pylon to its original position within said outer pylon,
whereby said compression member reaches its maximum deflection in response to large, sudden forces in a manner which is not abrupt and results in comfort for the amputee during all loading conditions upon the stump of the amputee.
- 36. The prosthesis of claim 35, wherein said compression member comprises resilient rings.
- 37. The prosthesis of claim 36, wherein said compression member comprises Belleville springs stacked in alternating concave up, convex up positions to minimize surface area contact and allow normal energy storage and release of individual springs.
- 38. The prosthesis of claim 36, wherein said rings are formed of urethane.
- 39. The prosthesis of claim 35, further comprising a guide rod extending axially substantially through the center of said outer pylon for alignment of said compression member.
- 40. The prosthesis of claim 35, wherein said compression member comprises a gas having said nonlinear deflection response to loading.
- 41. The prosthesis of claim 40, wherein said outer pylon has a valve positioned thereon for allowing said gas to be pumped into the interior of said outer pylon.
- 42. The prosthesis of claim 40, wherein a sealing member minimizes loss of said gas during compression of said prosthesis as the amputee participates in various activities.
- 43. The prosthesis of claim 35, further comprising a nonstick coating applied to contacting surfaces of said outer and inner pylons to minimize energy loss from friction.
- 44. The prosthesis of claim 35, further comprising a coupling device for demountably attaching said prosthesis to a device for receiving the stump of the amputee.
- 45. The prosthesis of claim 35, wherein said module is adapted to be demountably attached to the foot member.
- 46. The prosthesis of claim 35, wherein said compression member comprises a viscous fluid having said nonlinear deflection response to loading.
- 47. A vertical shock absorbing prosthesis for a lower limb prosthesis for reducing the shock forces upon a stump of an amputee and adapted to be positioned between the stump and a foot member, comprising:
a substantially rigid outer pylon having a proximal end and a distal end; a substantially rigid inner pylon having a proximal portion and a distal portion, said proximal portion positioned within said distal end of said outer pylon to form a chamber, said chamber having a variable volume depending upon the relative axial positions of said proximal end of said outer pylon and said proximal portion of said inner pylon; and a compression member disposed in said chamber, said compression member being selected and adapted to have nonlinear response characteristics under compressive loads;
wherein when said inner pylon is pushed toward said proximal end of said outer pylon by the foot member impacting the ground said volume of said chamber is reduced and energy from shock forces upon the stump of the amputee are at least partially absorbed by said compression member, said compression member releasing the stored energy upon removal of the forces to restore said inner pylon to its original position within said outer pylon.
- 48. A vertical shock absorbing prosthesis for a lower limb prosthesis for reducing the shock forces upon a stump of an amputee and adapted to be positioned between the stump and a foot member, comprising:
an outer pylon having a proximal end and a distal end; an inner pylon having a proximal end and a distal end, the inner pylon being provided at least partially within the outer pylon; and means for resisting relative axial motion between the outer pylon relative to the inner pylon.
- 49. The prosthesis of claim 48, wherein the means for resisting relative axial motion includes a compressible spring inside the inner pylon.
- 50. The prosthesis of claim 48, wherein the means for resisting relative axial motion includes a compressible fluid inside the inner pylon.
- 51. The prosthesis of claim 48, wherein the means for resisting relative axial motion includes a plurality of interconnected disks inside the inner pylon.
- 52. The prosthesis of claim 48, wherein the means for resisting relative axial motion includes a Belleville spring inside the inner pylon.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application is a continuation-in-part of application Serial No. 09/289,533, filed Apr. 9, 1999, the entirety of which is hereby incorporated by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09289533 |
Apr 1999 |
US |
Child |
09556249 |
Apr 2000 |
US |