Claims
- 1. A magnetic core antenna system comprising:
a magnetic core having a first section and a second section along a length thereof; and a winding network including at least one winding, said winding network having a first concentration of ampere-turns around said first section a second concentration of ampere-turns around said second section, said first concentration being greater than said second concentration.
- 2. The magnetic core antenna system of claim 1, wherein said first concentration is at least 10% greater than said second concentration.
- 3. The magnetic core antenna system of claim 1, wherein said magnetic core includes a first end, a second end, and a center section disposed between said first and second end; and wherein said first end comprises said first section and said center section comprises said second section.
- 4. The magnetic core antenna system of claim 3, wherein said winding network further has a third concentration of ampere-turns about said second end, said third concentration being greater than said second concentration.
- 5. The magnetic core antenna system of claim 4, wherein said first concentration is substantially equal to said third concentration.
- 6. The magnetic core antenna system of claim 1, wherein said winding network comprises a plurality of said windings.
- 7. The magnetic core antenna system of claim 1, said system further comprising a transmitter for driving said winding network, and wherein said winding network comprises a plurality of said windings configured to present a combined winding impedance to said transmitter, said combined winding impedance being selected for establishing a desired power transfer from said transmitter to said winding network.
- 8. The magnetic core antenna of claim 7, wherein said desired power transfer is an optimal power transfer.
- 9. The magnetic core antenna system of claim 7, wherein said transmitter is coupled directly to said plurality of windings.
- 10. The magnetic core antenna system of claim 7, wherein at least one of said plurality of windings has an impedance level greater than said combined winding impedance.
- 11. The magnetic core antenna system of claim 7, wherein said plurality of windings comprises a first winding connected in parallel with a second winding.
- 12. The magnetic core antenna system of claim 1, wherein said magnetic core comprises a plurality of core components configured in an end-to-end relationship.
- 13. The magnetic core antenna system of claim 12, wherein said plurality of core components form a first row of core components, and wherein said magnetic core comprises a second plurality of core components configured in an end-to-end relationship to form a second row of core components positioned adjacent to said first row of core components.
- 14. The magnetic core assembly of claim 13, wherein each of said core components of said first row contacts at least one associated one of said core components of said second row.
- 15. The magnetic core antenna system of claim 14, wherein said core components of said first row are spaced from each other to define at least one first row air gap, and wherein said core components of said second row are spaced from the each other to define at least one second row air gap.
- 16. The magnetic core antenna system of claim 15, wherein said at least one first row air gap is spanned by an associated one of said core components of said second row, and wherein said at least one second row air gap is spanned by an associated one of said core components of said first row.
- 17. The magnetic core assembly of claim 15, wherein said at least one first row air gap is dimensioned to permit relative movement between said core components of said first row, and said at least one second row air gap is dimensioned to permit relative movement between said core components of said second row.
- 18. The magnetic core assembly of claim 17, wherein said at least one first row air gap and said at least one second row air gap is at least 0.1 mm.
- 19. The magnetic core antenna system of claim 1, wherein said magnetic core comprises:
a first core component having a first longitudinal surface; and a second core component having a second longitudinal surface, wherein at least a portion of said first longitudinal surface contacts at least a portion of said second longitudinal surface at a longitudinal contact surface area between said first core component and said second core component.
- 20. The magnetic core assembly of claim 19, wherein a transverse clamping force is applied to said first and second core components to force said portion of said first longitudinal surface against said portion of said second longitudinal surface.
- 21. The magnetic core assembly of claim 19, wherein said longitudinal contact surface area is greater than or equal to a cross sectional area of said first core component.
- 22. The magnetic core assembly of claim 19, wherein said first core component and said second core component are positioned to define an air gap therebetween.
- 23. The magnetic core assembly of claim 22, wherein said air gap is dimensioned to permit relative movement between said first core component and said second core component.
- 24. The magnetic core assembly of claim 23, wherein said air gap is at least 0.1 mm.
- 25. The magnetic core assembly of claim 1, wherein said magnetic core comprises ferrite.
- 26. The magnetic core assembly of claim 1, wherein said magnetic core comprises an amorphous magnetic material.
- 27. The magnetic core assembly of claim 1, wherein said magnetic core comprises a nanocrystalline material.
- 28. A method of making a core antenna for an EAS or RFID system, said method comprising
providing a core having core having a first section and a second section along a length thereof; and placing a winding network on said core, said winding network comprising a first concentration of ampere-turns around said first section and a second concentration of ampere-turns about said second section, said first concentration being greater than said second concentration.
- 29. The method of claim 28, wherein said first concentration is at least 10% greater than said second concentration.
- 30. The method of claim 28, wherein said magnetic core includes a first end, a second end, and a center section disposed between said first and second end; and wherein said first end comprises said first section and said center section comprises said second section.
- 31. The method of claim 30, wherein said winding network further has a third concentration of ampere-turns about said second end, said third concentration being greater than said second concentration.
- 32. The method of claim 31, wherein said first concentration is substantially equal to said third concentration.
- 33. The method of claim 28, wherein said winding network comprises a plurality of said windings, and wherein said method further comprises configuring said plurality of windings to present a combined winding impedance to a transmitter, said combined winding impedance being selected for establishing a desired power transfer from said transmitter to said winding network.
- 34. The method of claim 33, wherein said desired power transfer is an optimal power transfer.
- 35. The method of claim 28, wherein said magnetic core comprises a plurality of core components configured in an end-to-end relationship.
- 36. The method of claim 35, wherein said plurality of core components form a first row of core components, and wherein said magnetic core comprises a second plurality of core components configured in an end-to-end relationship to form a second row of core components positioned adjacent to said first row of core components.
- 37. The method of claim 36, wherein each of said core components of said first row contacts at least one associated one of said core components of said second row.
- 38. The method of claim 37, wherein said core components of said first row are spaced from each other to define at least one first row air gap, and wherein said core components of said second row are spaced from the each other to define at least one second row air gap.
- 39. The method of claim 38, wherein said at least one first row air gap is spanned by an associated one of said core components of said second row, and wherein said at least one second row air gap is spanned by an associated one of said core components of said first row.
- 40. The method of claim 38, wherein said at least one first row air gap is dimensioned to permit relative movement between said core components of said first row, and said at least one second row air gap is dimensioned to permit relative movement between said core components of said second row.
- 41. The method of claim 40, wherein said at least one first row air gap and said at least one second row air gap is at least 0.1 mm.
- 42. The method of claim 35, wherein said plurality of core components comprises:
a first core component having a first longitudinal surface; and a second core component having a second longitudinal surface, wherein at least a portion of said first longitudinal surface contacts at least a portion of said second longitudinal surface at a longitudinal contact surface area between said first core component and said second core component.
- 43. The method of claim 42, wherein a transverse clamping force is applied to said first and second core components to force said portion of said first longitudinal surface against said portion of said second longitudinal surface.
- 44. The method of claim 42, wherein said first core component and said second core component are positioned to define an air gap therebetween.
- 45. The method of claim 44, wherein said air gap is dimensioned to permit relative movement between said first core component and said second core component.
- 46. The method of claim 45, wherein said air gap is at least 0.1 mm.
- 47. A magnetic core antenna system comprising:
a transmitter; and a magnetic core antenna configured to be driven by said transmitter, said magnetic core antenna comprising a plurality of windings disposed along a length of said magnetic core antenna, said plurality of windings configured to present a combined winding impedance to said transmitter, said combined winding impedance being selected for establishing a desired power transfer from said transmitter to said plurality of windings.
- 48. The magnetic core antenna of claim 47, wherein said desired power transfer is an optimal power transfer.
- 49. The magnetic core antenna system of claim 47, wherein said transmitter is coupled directly said plurality of windings.
- 50. The magnetic core antenna system of claim 47, wherein at least one of said plurality of windings has an impedance level greater than said combined winding impedance.
- 51. The magnetic core antenna system of claim 47, wherein said plurality of windings comprises a first winding connected in parallel with a second winding.
- 52. A method of optimizing power transfer from a transmitter to an associated magnetic core antenna, said method comprising:
configuring a plurality of coils along a length of said magnetic core antenna to present a combined winding impedance level to said transmitter, said combined winding impedance level being selected to maximize a voltage output of said transmitter without exceeding a current limit of said transmitter.
- 53. The method of claim 52, wherein said plurality of coils comprises a first coil coupled in parallel with a second coil.
- 54. The method of claim 52, wherein said plurality of coils comprises a first coil coupled in series with a second coil.
- 55. A magnetic core antenna assembly comprising:
a plurality of core components configured in an end-to-end relationship.
- 56. The magnetic core assembly of claim 55, wherein at least first and second ones of said core components are positioned to define an air gap therebetween.
- 57. The magnetic core assembly of claim 56, wherein said air gap is dimensioned to permit relative movement between said first and second ones of said core components.
- 58. The magnetic core assembly of claim 57, wherein said air gap is at least 0.1 mm.
- 59. The magnetic core antenna system of claim 55, wherein said plurality of core components form a first row of core components, and wherein said magnetic core comprises a second plurality of core components configured in an end-to-end relationship to form a second row of core components positioned adjacent to said first row of core components.
- 60. The magnetic core assembly of claim 59, wherein each of said core components of said first row contacts at least one associated one of said core components of said second row.
- 61. The magnetic core antenna system of claim 60, wherein said core components of said first row are spaced from each other to define at least one first row air gap, and wherein said core components of said second row are spaced from the each other to define at least one second row air gap.
- 62. The magnetic core antenna system of claim 61, wherein said at least one first row air gap is spanned by an associated one of said core components of said second row, and wherein said at least one second row air gap is spanned by an associated one of said core components of said first row.
- 63. The magnetic core assembly of claim 61, wherein said at least one first row air gap is dimensioned to permit relative movement between said core components of said first row, and said at least one second row air gap is dimensioned to permit relative movement between said core components of said second row.
- 64. The magnetic core assembly of claim 63, wherein said at least one first row air gap and said at least one second row air gap is at least 0.1 mm.
- 65. The magnetic core assembly of claim 55, wherein said plurality of core components comprises:
a first core component having a first longitudinal surface; and a second core component having a second longitudinal surface, wherein at least a portion of said first longitudinal surface contacts at least a portion of said second longitudinal surface at a longitudinal contact surface area between said first core component and said second core component.
- 66. The magnetic core assembly of claim 65, wherein a transverse clamping force is applied to said first and second core components to force said portion of said first longitudinal surface against said portion of said second longitudinal surface.
- 67. The magnetic core assembly of claim 65, wherein said longitudinal contact surface area is greater than or equal to a cross sectional area of said first core component.
- 68. The magnetic core assembly of claim 65, wherein said first core component and said second core component are positioned to define an air gap therebetween.
- 69. The magnetic core assembly of claim 68, wherein said air gap is dimensioned to permit relative movement between said first core component and said second core component.
- 70. The magnetic core assembly of claim 69, wherein said air gap is at least 0.1 mm.
- 71. A method of making a magnetic core antenna, said method comprising:
positioning a plurality of magnetic core components in an end-to-end relationship.
- 72. The magnetic core antenna system of claim 71, wherein said plurality of core components form a first row of core components, and wherein said method further comprises positioning a second plurality of core components in an end-to-end relationship to form a second row of core components, and positioning said second row of core components adjacent to said first row of core components.
- 73. The magnetic core assembly of claim 72, said positioning said second row of core components adjacent to said first row of core components comprises contacting at each of said core components of said first row with at least one associated one of said core components of said second row.
- 74. The magnetic core antenna system of claim 73, wherein said positioning said pulality of core components in an end-to-end relationship to form a first row of core components comprises spacing core components of said first row from each other to define at least one first row air gap, and wherein said positioning said second pulality of core components in an end-to-end relationship to form a second row of core components comprises spacing core components of said second row from the each other to define at least one second row air gap.
- 75. The magnetic core antenna system of claim 74, where said at least one first row air gap is spanned by an associated one of said core components of said second row, and wherein said at least one second row air gap is spanned by an associated one of said core components of said first row.
- 76. The magnetic core assembly of claim 74, wherein said at least one first row air gap is dimensioned to permit relative movement between said core components of said first row, and said at least one second row air gap is dimensioned to permit relative movement between said core components of said second row.
- 77. The magnetic core assembly of claim 76, wherein said at least one first row air gap and said at least one second row air gap is at least 0.1 mm.
- 78. The method of claim 71, wherein said positioning of said pulality of core components in an end-to-end relationship comprises:
positioning a first longitudinal surface of a first one of said core components proximate a second longitudinal surface of a second one of said core components; and forcing at least a portion of said first longitudinal surface against at least a portion of said second longitudinal surface to form a longitudinal contact surface area between said first core component and said second core component.
- 79. The method of claim 78, wherein said first longitudinal surface and said second longitudinal surface are positioned to define an air gap between said first core component and said second core component.
- 80. The method of claim 79, wherein said air gap is dimensioned to permit relative movement between said first core component and said second core component.
- 81. The method of claim 80, wherein said air gap is at least 0.1 mm.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application Ser. No. 60/478,943, filed Jun. 16, 2003, the teachings of which applications are incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60478943 |
Jun 2003 |
US |