Claims
- 1. A magnetorheologically actuated rotary prosthetic knee for precisely and rapidly controlling lower limb movement, comprising:
a substantially central core and a pair of side plates formed from a magnetically soft material to create a magnetic return path; a plurality of interspersed and alternating magnetically soft rotors and magnetically soft stators arranged to form a plurality of gaps therebetween containing a magnetorheological fluid which is sheared during knee rotation; an electromagnet positioned between said core and said rotors and said stators and being responsive to an electrical signal to generate a variable magnetic field to cause a controlled change in the viscosity of said magnetorheological fluid; and a pair of bearings in rotary communication with said rotors and a shin portion of said lower limb to transfer rotary resistive torques from said prosthetic knee to said shin portion.
- 2. The prosthetic knee of claim 1, wherein at least one of said rotors and said stators are laterally displaceable about the longitudinal axis of said prosthetic knee to create mechanical contact between adjacent said rotors and said stators.
- 3. The prosthetic knee of claim 1, wherein said core and said side plates comprise an iron-cobalt high magnetic saturation alloy.
- 4. The prosthetic knee of claim 1, wherein said rotors and said stators are fabricated from blue temper steel.
- 5. The prosthetic knee of claim 1, wherein said rotors and said stators are substantially annular in shape.
- 6. The prosthetic knee of claim 5, wherein the ratio between the outer diameter and inner diameter of each said rotor is about 1.3.
- 7. The prosthetic knee of claim 5, wherein the ratio between the outer diameter and inner diameter of each said rotor is in the range from about 1.1 to about 10.
- 8. The prosthetic knee of claim 5, wherein the ratio between the outer diameter and inner diameter of each said stator is about 1.3.
- 9. The prosthetic knee of claim 5, wherein the ratio between the outer diameter and inner diameter of each said stator is in the range from about 1.1 to about 10.
- 10. The prosthetic knee of claim 1, wherein said rotors and said stators have a thickness of about 0.2 mm (0.008 inches).
- 11. The prosthetic knee of claim 1, wherein said plurality of rotors comprises forty said rotors.
- 12. The prosthetic knee of claim 1, wherein said plurality of stators comprises forty one said stators.
- 13. The prosthetic knee of claim 1, wherein said magnetorheological fluid comprises polarizable iron particles having a size of about 1 micron (μm) suspended in a carrier fluid.
- 14. A controllable magnetorheological brake for an artificial knee to dampen knee joint rotation, comprising:
a plurality of alternatingly arranged and spaced magnetizable rotors and magnetizable stators concentrically configured about a longitudinal axis of rotation of said artificial knee; a magnetorheological fluid residing in a plurality of gaps formed between said rotors and said stators; a magnet being responsive to an applied voltage and adapted to generate a variable magnetic field which passes through said rotors, said stators and said magnetorheological fluid; whereby, shearing of said magnetorheological fluid in said gaps between said rotors and said stators creates a variable torque output which precisely controls the rotation of said artificial knee.
- 15. The magnetorheological brake of claim 14, wherein at least one of said rotors and said stators are laterally displaceable about said longitudinal axis of rotation so that said variable torque output comprises viscous shear and frictional components.
- 16. The magnetorheological brake of claim 14, wherein said rotors and said stators comprise silicon steel.
- 17. The magnetorheological brake of claim 14, wherein said rotors and said stators comprise generally annular disks.
- 18. The magnetorheological brake of claim 14, wherein said rotors and said stators comprise generally cylindrical tubes.
- 19. The magnetorheological brake of claim 14, wherein said plurality of rotors comprises between about one to about one hundred said rotors.
- 20. The magnetorheological brake of claim 14, wherein said plurality of stators comprises between about one to about one hundred one said stators.
- 21. The magnetorheological brake of claim 14, wherein the size of each said gap between said rotors and said stators is about 40 microns (μm).
- 22. The magnetorheological brake of claim 14, wherein the size of each said gap between said rotors and said stators is in the range from about 10 microns (μm) to about 100 microns (μm).
- 23. The magnetorheological brake of claim 14, wherein said plurality of gaps comprises about forty gaps.
- 24. The magnetorheological brake of claim 14, wherein said magnet comprises a bobbin generally circumscribed by a winding.
- 25. The magnetorheological brake of claim 24, wherein said winding comprises about three hundred and forty turns of copper wire.
- 26. The magnetorheological brake of claim 14, wherein the variable torque output of said magnetorheological brake is in the range from about 0.5 N-m to about 40 N-m.
- 27. The magnetorheological brake of claim 14, wherein said magnetorheological brake controls the rotation of said artificial knee up to a rotation angle of about 125° to about 150°.
- 28. An electronically controlled prosthetic knee for generating a wide dynamic torque range, comprising:
a plurality of rotors comprising a ferrous material, said rotors being rotatable and laterally displaceable about a longitudinal axis of rotation of said prosthetic knee; a plurality of stators comprising a ferrous material and alternatingly interspersed with said rotors to form gaps therebetween, said stators being laterally displaceable about said axis of rotation of said prosthetic knee; a fluid adapted to undergo a rheology change in response to an applied magnetic field and residing in said gaps formed between said rotors and said stators; whereby, actuation of said magnetic field generates during knee rotation a controllable variable knee damping torque.
- 29. The prosthetic knee of claim 28, wherein said fluid comprises a magnetically controllable fluid.
- 30. The prosthetic knee of claim 28, wherein said fluid comprises a magnetorheological fluid.
- 31. The prosthetic knee of claim 28, wherein said knee damping torque comprises a frictional damping torque.
- 32. The prosthetic knee of claim 28, wherein said frictional damping torque comprises less than about 10% of the total knee damping torque.
- 33. A prosthetic assembly, comprising:
the prosthetic knee as recited in claim 28; a stump socket in mechanical communication with said prosthetic knee and adapted to receive the residual limb of an amputee; a prosthetic shin portion in mechanical communication with said prosthetic knee; and a prosthetic foot in mechanical communication with said prosthetic shin portion.
- 34. A rotary prosthetic knee for an amputee, comprising:
a rotatable inner spline; a plurality of rotors engaged with said inner spline; a plurality of stators alternatingly interspersed with said rotors; an outer spline engaged with said stators; and a magnetically controlled medium residing in a plurality of sealed gaps between said rotors and said stators and adapted to undergo a controlled bulk property change in response to an applied magnetic field such that the rotation of said rotors which shear said magnetically controlled medium is precisely controlled and the rotation of said prosthetic knee is variably damped to provide a substantially natural gait for said amputee.
- 35. The prosthetic knee of claim 34, wherein said rotors and said stators comprise a magnetic material.
- 36. The prosthetic knee of claim 34, wherein said magnetically controlled medium comprises a magnetorheological fluid.
- 37. The prosthetic knee of claim 34, wherein said inner spline comprises a plurality of longitudinal grooves.
- 38. The prosthetic knee of claim 37, wherein each said rotor comprises a plurality of teeth matingly engaged with said longitudinal grooves of said inner spline.
- 39. The prosthetic knee of claim 34, wherein said outer spline comprises a plurality of longitudinal grooves.
- 40. The prosthetic knee of claim 39, wherein each said stator comprises a plurality of teeth matingly engaged with said longitudinal grooves of said outer spline.
- 41. The prosthetic knee of claim 34, wherein said gaps between said rotors and said stators have a size of about 40 microns (μm).
- 42. The prosthetic knee of claim 34, wherein said inner spline comprises a titanium alloy.
- 43. The prosthetic knee of claim 34, wherein said outer spline comprises an anodized aluminum alloy.
- 44. The prosthetic knee of claim 34, wherein said outer spline comprises a pyramid stub to facilitate connection of said prosthetic knee to a residual limb socket.
- 45. The prosthetic knee of claim 34, further comprising a pair of bearings to transfer rotary motion from said inner spline to a prosthetic shin.
- 46. The prosthetic knee of claim 34, further comprising a pair of rotatable side mounting forks to facilitate connection of said prosthetic knee to a prosthetic shin.
- 47. The prosthetic knee of claim 34, further comprising a magnetic central portion and a pair of mechanically connected magnetic side plates to create a magnetic return path for said magnetic field.
- 48. The prosthetic knee of claim 47, wherein said central portion and said side plates are formed by machining followed by heat treatment in a dry hydrogen atmosphere.
- 49. The prosthetic knee of claim 34, further comprising a magnetic exterior portion and a pair of mechanically connected magnetic side plates to create a magnetic return path for said magnetic field.
- 50. The prosthetic knee of claim 34, further comprising a cushioned flexion stop system to control the maximum flexion of said prosthetic knee.
- 51. The prosthetic knee of claim 34, further comprising a cushioned extension stop system to control the maximum extension of said prosthetic knee.
- 52. The prosthetic knee of claim 34, further comprising an extension assist device for facilitating in extending said prosthetic knee.
- 53. The prosthetic knee of claim 34, further comprising a controller to control and monitor the actuations of said prosthetic knee.
- 54. A variable torque magnetorheological brake for a prosthetic knee, comprising:
a substantially central core; a first side plate connected to a first end of said core; a second side plate connected to a second end of said core; a rotatable and laterally displaceable blade positioned between said first side plate and said second side plate; a magnetorheological fluid in a pair of microgaps formed between said blade and said side plates; a magnet to generate a magnetic field such that a magnetic circuit is created through said core, said first side plate, said second side plate, said blade and said magnetorheological fluid; and said microgaps having a size which is optimally minimized such that when said magnetic field has a zero value there is substantially no frictional contact between said blade and said side plates, thereby allowing said prosthetic knee to swing freely and provide a wide dynamic range.
- 55. The magnetorheological brake of claim 54, wherein said microgaps have a size of about 40 microns (μm).
- 56. The magnetorheological brake of claim 54, wherein said microgaps have a size in the range of about 10 microns (μm) to about 100 microns (μm).
- 57. A controllable rotary damper for an artificial knee, comprising:
a plurality of interspersed inner rotors and outer rotors concentrically arranged about a longitudinal axis of said artificial knee; a plurality of magnetorheological fluid films with each said film resident in one of a plurality of gaps between said inner rotors and said outer rotors; a pair of side plates sandwiching said inner rotors and said outer rotors with at least one said side plates being laterally movable along said longitudinal axis of said artificial knee; an electromagnet adapted to create a magnetic field through said inner rotors, said outer rotors, said magnetorheological fluid and said side plates; whereby, relative rotation between said inner rotors and said outer rotors and lateral movement of at least one of said side plates generates a variable damping torque to control the rotation of said artificial knee.
- 58. The damper of claim 57, wherein said damping torque comprises a frictional component and a viscous component.
- 59. The damper of claim 58, wherein said frictional component comprises about 20% of said damping torque.
- 60. A method of rapidly and precisely controlling the rotation of an electronic prosthetic knee comprising a plurality of alternatingly interspersed magnetically soft rotors, magnetically soft stators and magnetorheological fluid present in a plurality of gaps formed between said rotors and said stators, said method comprising the steps of:
creating an attractive force between said rotors and said stators by application of a magnetic field to cause frictional contact between adjacent said rotors and said stators thereby frictionally dampening the rotation of said prosthetic knee; shearing magnetorheological fluid present in said gaps formed between said rotors and said stators to viscously dampen the rotation of said prosthetic knee; and adjusting said magnetic field to rapidly and precisely vary the viscosity of said magnetorheological fluid and the attractive force between adjacent said rotors and said stators to provide variable rotary torsional resistance to control the flexion and extension of said prosthetic knee.
RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional application Ser. No. 60/177,108, filed Jan. 20, 2000, the entire disclosure of which is hereby incorporated by reference herein.
Provisional Applications (1)
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Number |
Date |
Country |
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60177108 |
Jan 2000 |
US |