Claims
- 1. A variable inductor, comprising:
- a plurality of magnetic cores with matching magnetic permeability and saturation flux density characteristics where each core has a physical symmetry and a closed magnetic path;
- a control winding, said control winding is wired in an aiding configuration around said plurality of magnetic cores; and
- a RF winding, said RF winding is wired in an opposing configuration using a figure eight configuration around and through said plurality of magnetic cores, said RF winding produces a bootstrapping of interwinding capacitance for said control winding, and said RF winding causes the sum of the induced voltage around each individual turn of said control winding to be zero and the RF potential at each point on a given turn of either of said windings and induced by the other said winding to be the same as at the corresponding point on said windings on either side of the point.
- 2. The variable inductor of claim 1 wherein said plurality of magnetic cores further comprise toroidal cores.
- 3. The variable inductor of claim 1 wherein the wiring of said RF winding and said control winding decouples the winding capacitance from the frequency limitations of the reactor.
- 4. A method of manufacturing a variable inductor, comprising the following steps:
- providing a plurality of magnetic cores with matching magnetic permeability and saturation flux density characteristics where each has a physical symmetry and a closed magnetic path;
- wiring a control winding in an aiding configuration around said plurality of magnetic cores; and
- wiring a RF winding in an opposing configuration using a figure eight configuration around and through said plurality of magnetic cores, said RF winding produces a bootstrapping of interwinding capacitance for said control winding and said RF winding causes the sum of the induced voltage around each individual turn of said control winding to be zero and the RF potential at each point on a given turn of either of said windings and induced by the other said winding to be the same as at the corresponding point on said windings on either side of the point.
- 5. The manufacturing method of claim 4 wherein said plurality of magnetic cores further comprise toroidal cores.
- 6. The saturable reactor of claim 4 wherein the wiring of said RF winding and said control winding decouples thte winding capacitance from the frequency limitations of the reactor.
- 7. A process for varying a reactance, comprising the following steps:
- providing a DC current to a control winding, said control winding is wired in an aiding configuration around a plurality of magnetic cores with matching magnetic permeability and saturation flux density characteristics where each core has a physical symmetry and a closed magnetic path; and
- providing an AC signal to a RF winding, said RF winding is wired in an opposing configuration using a figure eight configuration around and through said plurality of magnetic cores, said RF winding, produces a bootstrapping of interwinding capacitance for said control winding, and said RF winding causes the sum of the induced voltage around each individual turn of said control winding to be zero and the RF potential at each point on a given turn of either of said windings and induced by the other said winding to be the same as at the corresponding point on said windings on either side of the point.
- 8. The process of claim 7 wherein said plurality of cores further comprise toroidal cores.
- 9. The process of claim 7 wherein the wiring of said RF winding and said control winding decouples the winding capacitance from the frequency limitations of the reactor.
- 10. An apparatus for impedance matching, comprising:
- an impedance transformer for matching a resistance; and
- a saturable reactor for matching a reactive impedance coupled to said impedance transformer, said saturable reactor further comprises:
- a plurality of magnetic cores where each core has a physical symmetry and a closed magnetic path;
- a control winding, said control winding is wired in an aiding configuration around said plurality of magnetic cores; and
- a RF winding, said RF winding is wired in an opposing configuration through said plurality of magnetic cores.
- 11. The apparatus of claim 10 wherein said plurality of magnetic cores further comprise cores with matching magnetic permeability and saturation flux density characteristics.
- 12. The apparatus of claim 10 wherein said plurality of magnetic cores further comprise toroidal cores.
- 13. The apparatus of claim 10 wherein the wiring of said RF winding further comprises a figure eight configuration around and between said plurality of magnetic cores.
- 14. The apparatus of claim 10 wherein the wiring of said RF winding further comprises a turn to turn bootstrapping of said control winding.
- 15. The apparatus of claim 10 wherein the wiring of said RF winding and said control winding decouples the winding capacitance from the frequency limitations of the reactor.
- 16. A process for impedance matching, comprising the following steps:
- providing an AC signal to a matching transformer for matching a resistance, said matching transformer couples to a saturable reactor;
- providing a DC current to a control winding of said saturable reactor, said control winding is wired in an aiding configuration around a plurality of magnetic cores in said saturable reactor where each core has a physical symmetry and a closed magnetic path, said DC current varies a reactive impedance of said saturable reactor; and
- providing said AC signal to a RF winding of said saturable reactor for matching said reactive impedance, said RF winding is wired in an opposing configuration through said plurality of magnetic cores of said saturable reactor.
- 17. The process of claim 16 wherein said plurality of magnetic cores further comprise cores with matching magnetic permeability and saturation flux density characteristics.
- 18. The process of claim 16 wherein said plurality of magnetic cores further comprise toroidal cores.
- 19. The process of claim 16 wherein the wiring of said RF winding further comprises a figure eight configuration around and between said plurality of magnetic cores.
- 20. The process of claim 16 wherein the wiring of said RF winding further comprises a turn to turn bootstrapping of said control winding.
- 21. The process of claim 16 wherein the wiring of said RF winding and said control winding decouples the winding capacitance from the frequency limitations of the reactor.
Government Interests
The United States Government has rights in this invention pursuant to Cooperative Research and Development Agreement ("CRADA") No. 01082, among SEMATECH Inc., Sandia Corporation and Lockheed Martin Energy Research Corporation.
US Referenced Citations (18)
Non-Patent Literature Citations (1)
Entry |
Radio Communication Handbook, Sixth Edition, Radio Society of Great Britain, Editor: Dick Biddulph, 1994 G8DPS, ISBN 1-872309-24-0, pp. 6.30-6.33, no month. |