Claims
- 1. A nested magnetic array comprising:an outer magnet having a magnetization pointing in an axial direction; a middle magnet having a radial magnetization substantially perpendicular to the magnetization of said outer magnet; and an inner magnet having a magnetization directed substantially anti-parallel to the magnetization of said outer magnet.
- 2. The magnetic array of claim 1, wherein the inner magnet, middle magnet, and outer magnet are cannulated.
- 3. The magnetic array of claim 1, wherein the inner magnet, is a solid member.
- 4. The magnetic array of claim 1, wherein the inner magnet, middle magnet, and outer magnet are made from NdFeB.
- 5. The magnetic array of claim 1, wherein the inner magnet, middle magnet, and outer magnet are made from SmCo.
- 6. A permanent magnetic actuator comprising:a first magnetic array comprising nested outer and middle magnets and an inner magnet, wherein the outer magnet of said first magnetic array has a magnetization pointing in an axial direction, the middle magnet of said first magnetic array has a radial magnetization, and the inner magnet of said first magnetic array has a magnetization directed substantially anti-parallel to the magnetization of said outer magnet; and a conductive coil having a current distributed over the volume of said conductive coil, wherein the magnetic field of said first magnetic array is substantially perpendicular to said current in said coil.
- 7. The permanent magnetic actuator of claim 6, wherein said conductive coil is located below said first magnetic array.
- 8. The permanent magnetic actuator of claim 6, wherein said conductive coil is located above said first magnetic array.
- 9. The permanent magnetic actuator of claim 6, further comprising:a second magnetic array comprising nested outer and middle magnets and an inner magnet, said second magnetic array being located on the opposite side of said conductive coil from said first magnetic array, wherein the outer magnet of said second magnetic array has a magnetization directed substantially parallel to the direction of the magnetization of the inner magnet of said first magnetic array, the middle magnet of said second magnetic array has a radial magnetization in substantially the same direction as the middle magnet of the first magnetic array, and the inner magnet of said second magnetic array has a magnetization substantially anti-parallel to the magnetization of the outer magnet of said second magnetic array; wherein said conductive coil is disposed between said first and said second magnetic arrays, and wherein the magnetic field of said first and said second magnetic arrays is substantially perpendicular to said current located in said conductive coil.
- 10. The permanent magnetic actuator of claim 9, further comprising annular ferromagnetic flux posts disposed between first and second magnetic arrays.
- 11. The permanent magnetic actuator of claim 9, further comprising ferromagnetic flux posts disposed between first and second magnetic arrays.
- 12. The permanent magnetic actuator of claim 9, wherein the conductive coil is wound in a pancake winding.
- 13. The permanent magnetic actuator of claim 9, wherein the conductive coil is wound in a solenoidal winding.
- 14. The permanent magnetic actuator of claim 9, wherein the conductive coil is wound in a toroidal winding.
- 15. The permanent magnetic actuator of claim 9, wherein the magnetic arrays are canted.
- 16. The permanent magnetic actuator of claim 9, wherein the conductive coil is wound with two toroidal windings, such that the windings have the same poloidal sense but opposite toroidal sense.
- 17. The permanent magnetic actuator of claim 9, wherein the conductive coil is wound with two toroidal windings, such that the windings have the same toroidal sense but opposite poloidal sense.
- 18. The permanent magnetic actuator of claim 6, wherein said conductive coil comprises at least one wire having a plurality of turns.
- 19. The permanent magnetic actuator of claim 18, wherein the conductive coil is wound with two toroidal windings, such that the windings have the same poloidal sense but opposite toroidal sense.
- 20. The permanent magnetic actuator of claim 18, wherein the conductive coil is wound with two toroidal windings, such that the windings have the same toroidal sense but opposite poloidal sense.
- 21. The permanent magnetic actuator of claim 6, wherein the inner magnet, middle magnet, and outer magnet are cannulated.
- 22. The permanent magnetic actuator of claim 6, wherein the inner magnet, is a solid member.
- 23. The permanent magnetic actuator of claim 6, wherein the inner magnet, middle magnet, and outer magnet are made from NdFeB.
- 24. The permanent magnetic actuator of claim 6, wherein the inner magnet, middle magnet, and outer magnet are made from SmCo.
- 25. The permanent magnetic actuator of claim 6, wherein the conductive coil is wound in a pancake winding.
- 26. The permanent magnetic actuator of claim 6, wherein the conductive coil is wound in a solenoidal winding.
- 27. The permanent magnetic actuator of claim 6, wherein the conductive coil is wound in a toroidal winding.
- 28. The permanent magnetic actuator of claim 6, wherein the conductive coil is wound with two toroidal windings, such that the windings have the same poloidal sense but opposite toroidal sense.
- 29. The permanent magnetic actuator of claim 28, wherein the magnetic arrays are canted.
- 30. The permanent magnetic actuator of claim 6, wherein the conductive coil is wound with two toroidal windings, such that the windings have the same toroidal sense but opposite poloidal sense.
- 31. The permanent magnetic actuator of claim 30, wherein the magnetic arrays are canted.
- 32. A method for creating a magnetic force comprising:creating a magnetic field engulfing a conductive coil, said magnetic field comprising the superposition of a first magnetic field curling from an inner magnet of a magnetic array outward to an outer magnet of said magnetic array, and a second magnetic field pointing radially outward from a middle magnet of said magnetic array; and applying a current through said conductive coil.
- 33. A nested magnetic array comprising:an outer annular magnet having a magnetization pointing in an axial direction; a middle annular magnet having a radial magnetization substantially perpendicular to the magnetization of said outer annular magnet; and an inner cylindrical magnet having a magnetization directed substantially anti-parallel to the magnetization of said outer annular magnet.
- 34. The magnetic array of claim 33, wherein the inner cylindrical magnet, middle annular magnet, and outer annular magnet are cannulated.
- 35. The magnetic array of claim 33, wherein the inner cylindrical magnet, is a solid member.
- 36. The magnetic array of claim 33, wherein the inner cylindrical magnet, middle annular magnet, and outer annular magnet are made from NdFeB.
- 37. The magnetic array of claim 33, wherein the inner cylindrical magnet, middle annular magnet, and outer annular magnet are made from SmCo.
- 38. A permanent magnetic actuator comprising:a first magnetic array comprising nested outer and middle annular magnets and an inner cylindrical magnet, wherein the outer annular magnet of said first magnetic array has a magnetization pointing in an axial direction, the middle annular magnet of said first magnetic array has a radial magnetization, and the inner cylindrical magnet of said first magnetic array has a magnetization directed substantially anti-parallel to the magnetization of said outer annular magnet; and a conductive coil having a current distributed over the volume of said conductive coil, wherein the magnetic field of said first magnetic array is substantially perpendicular to said current in said coil.
- 39. The permanent magnetic actuator of claim 38, wherein said conductive coil is located below said first magnetic array.
- 40. The permanent magnetic actuator of claim 38, wherein said conductive coil is located above said first magnetic array.
- 41. The permanent magnetic actuator of claim 38, further comprising:a second magnetic array comprising nested outer and middle annular magnets and an inner cylindrical magnet, said second magnetic array being located on the opposite side of said conductive coil from said first magnetic array, wherein the outer annular magnet of said second magnetic array has a magnetization directed substantially parallel to the direction of the magnetization of the inner cylindrical magnet of said first magnetic array, the middle annular magnet of said second magnetic array has a radial magnetization in substantially the same direction as the middle annular magnet of the first magnetic array, and the inner cylindrical magnet of said second magnetic array has a magnetization substantially anti-parallel to the magnetization of the outer annular magnet of said second magnetic array; wherein said conductive coil is disposed between said first and said second magnetic arrays, and wherein the magnetic field of said first and said second magnetic arrays is substantially perpendicular to said current located in said conductive coil.
- 42. The permanent magnetic actuator of claim 41, further comprising annular ferromagnetic flux posts disposed between first and second magnetic arrays.
- 43. The permanent magnetic actuator of claim 41, further comprising ferromagnetic flux posts disposed between first and second magnetic arrays.
- 44. The permanent magnetic actuator of claim 41, wherein the conductive coil is wound in a pancake winding.
- 45. The permanent magnetic actuator of claim 41, wherein the conductive coil is wound in a solenoidal winding.
- 46. The permanent magnetic actuator of claim 41, wherein the conductive coil is wound in a toroidal winding.
- 47. The permanent magnetic actuator of claim 41, wherein the conductive coil is wound with two toroidal windings, such that the windings have the same poloidal sense but opposite toroidal sense.
- 48. The permanent magnetic actuator of claim 41, wherein the conductive coil is wound with two toroidal windings, such that the windings have the same toroidal sense but opposite poloidal sense.
- 49. The permanent magnetic actuator of claim 38, wherein said conductive coil comprises at least one wire having a plurality of turns.
- 50. The permanent magnetic actuator of claim 38, wherein the inner cylindrical magnet, middle annular magnet, and outer annular magnet are cannulated.
- 51. The permanent magnetic actuator of claim 38, wherein the inner cylindrical magnet, is a solid member.
- 52. The permanent magnetic actuator of claim 38, wherein the inner cylindrical magnet, middle annular magnet, and outer annular magnet are made from NdFeB.
- 53. The permanent magnetic actuator of claim 38, wherein the inner cylindrical magnet, middle annular magnet, and outer annular magnet are made from SmCo.
- 54. The permanent magnetic actuator of claim 38, wherein the conductive coil is wound in a pancake winding.
- 55. The permanent magnetic actuator of claim 38, wherein the conductive coil is wound in a solenoidal winding.
- 56. The permanent magnetic actuator of claim 38, wherein the conductive coil is wound in a toroidal winding.
- 57. A method for creating a magnetic force comprising:creating a magnetic field engulfing a conductive coil, said magnetic field comprising the superposition of a first magnetic field curling from an inner cylinder of a magnetic array outward to an outer ring of said magnetic array, and a second magnetic field pointing radially outward from a middle annular ring of said magnetic array; and applying a current through said conductive coil.
- 58. A nested magnetic array comprising:an outer annular magnet having a magnetization pointing in an axial direction; a middle annular magnet having a radial magnetization substantially perpendicular to the magnetization of said outer annular magnet; and an inner annular magnet having a magnetization directed substantially anti-parallel to the magnetization of said outer annular magnet.
- 59. The magnetic array of claim 58, wherein the inner annular magnet, middle annular magnet, and outer annular magnet are cannulated.
- 60. The magnetic array of claim 58, wherein the inner annular magnet, is a solid member.
- 61. The magnetic array of claim 58, wherein the inner annular magnet, middle annular magnet, and outer annular magnet are made from NdFeB.
- 62. The magnetic array of claim 58, wherein the inner annular magnet, middle annular magnet, and outer annular magnet are made from SmCo.
- 63. A permanent magnetic actuator comprising:a first magnetic array comprising nested outer and middle annular magnets and an inner annular magnet, wherein the outer annular magnet of said first magnetic array has a magnetization pointing in an axial direction, the middle annular magnet of said first magnetic array has a radial magnetization, and the inner annular magnet of said first magnetic array has a magnetization directed substantially anti-parallel to the magnetization of said outer annular magnet; and a conductive coil having a current distributed over the volume of said conductive coil, wherein the magnetic field of said first magnetic array is substantially perpendicular to said current in said coil.
- 64. The permanent magnetic actuator of claim 63, wherein said conductive coil is located below said first magnetic array.
- 65. The permanent magnetic actuator of claim 63, wherein said conductive coil is located above said first magnetic array.
- 66. The permanent magnetic actuator of claim 63, further comprising:a second magnetic array comprising nested outer and middle annular magnets and an inner annular magnet, said second magnetic array being located on the opposite side of said conductive coil from said first magnetic array, wherein the outer annular magnet of said second magnetic array has a magnetization directed substantially parallel to the direction of the magnetization of the inner annular magnet of said first magnetic array, the middle annular magnet of said second magnetic array has a radial magnetization in substantially the same direction as the middle annular magnet of the first magnetic array, and the inner annular magnet of said second magnetic array has a magnetization substantially anti-parallel to the magnetization of the outer annular magnet of said second magnetic array; wherein said conductive coil is disposed between said first and said second magnetic arrays, and wherein the magnetic field of said first and said second magnetic arrays is substantially perpendicular to said current located in said conductive coil.
- 67. The permanent magnetic actuator of claim 66, further comprising annular ferromagnetic flux posts disposed between first and second magnetic arrays.
- 68. The permanent magnetic actuator of claim 66, further comprising ferromagnetic flux posts disposed between first and second magnetic arrays.
- 69. The permanent magnetic actuator of claim 66, wherein the conductive coil is wound in a pancake winding.
- 70. The permanent magnetic actuator of claim 66, wherein the conductive coil is wound in a solenoidal winding.
- 71. The permanent magnetic actuator of claim 66, wherein the conductive coil is wound in a toroidal winding.
- 72. The permanent magnetic actuator of claim 66, wherein the conductive coil is wound with two toroidal windings, such that the windings have the same poloidal sense but opposite toroidal sense.
- 73. The permanent magnetic actuator of claim 66, wherein the conductive coil is wound with two toroidal windings, such that the windings have the same toroidal sense but opposite poloidal sense.
- 74. The permanent magnetic actuator of claim 63, wherein said conductive coil comprises at least one wire having a plurality of turns.
- 75. The permanent magnetic actuator of claim 63, wherein the inner annular magnet, middle annular magnet, and outer annular magnet are cannulated.
- 76. The permanent magnetic actuator of claim 63, wherein the inner annular magnet is a solid member.
- 77. The permanent magnetic actuator of claim 63, wherein the inner annular magnet, middle annular magnet, and outer annular magnet are made from NdFeB.
- 78. The permanent magnetic actuator of claim 63, wherein the inner annular magnet, middle annular magnet, and outer annular magnet are made from SmCo.
- 79. The permanent magnetic actuator of claim 63, wherein the conductive coil is wound in a pancake winding.
- 80. The permanent magnetic actuator of claim 63, wherein the conductive coil is wound in a solenoidal winding.
- 81. The permanent magnetic actuator of claim 63, wherein the conductive coil is wound in a toroidal winding.
- 82. The permanent magnetic actuator of claim 63, wherein the conductive coil is wound with two toroidal windings, such that the windings have the same poloidal sense but opposite toroidal sense.
- 83. The permanent magnetic actuator of claim 63, wherein the conductive coil is wound with two toroidal windings, such that the windings have the same toroidal sense but opposite poloidal sense.
- 84. A method for creating a magnetic force comprising:creating a magnetic field engulfing a conductive coil, said magnetic field comprising the superposition of a first magnetic field curling from an inner ring of a magnetic array outward to an outer ring of said magnetic array, and a second magnetic field pointing radially outward from a middle annular ring of said magnetic array; and applying a current through said conductive coil.
CROSS REFERENCE TO RELATED APPLICATION
This Application claims priority from U.S. Provisional Application Ser. No. 60/325,123, filed Sep. 26, 2001.
US Referenced Citations (13)
Non-Patent Literature Citations (1)
Entry |
Image from PPT presentation, Corcoran Engineering, Apr. 2001, re: (Linear) Halbach Array Magnet Configuration. |
Provisional Applications (1)
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Number |
Date |
Country |
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60/325123 |
Sep 2001 |
US |