Claims
- 1. A capacitive-inductive device comprising a capacitor having a stack of at least two conductors, a dielectric material separating adjacent conductors, said stack forming a hollow cylinder with a longitudinal gap, electrical terminals on said capacitor forming opposite sides of said gap, said capacitive-inductive device generating a magnetic field within said hollow cylinder while charging or discharging the capacitor through said terminals, the device having an inductance and a capacitance.
- 2. The device of claim 1, further comprising a switching device across said electrical terminals for abruptly discharging charges stored on said capacitor for generating a rapidly changing magnetic field proximal said hollow cylinder.
- 3. The device of claim 2, wherein the switching device is selected from a group consisting of a multiplicity of switching devices, a single switch and a gap switch.
- 4. The device of claim 1, further comprising a secondary winding of a single cylindrical sheet or a multi-turn helical winding along said hollow cylinder for sharing a magnetic flux generated by discharging said capacitive-inductive device thereby generating an electrical impulse in said secondary winding.
- 5. The device of claim 1, wherein the conductors further comprise at least two plates, further comprising a power source connected to the terminals for charging the plates, and the plates forming a single turn sheet current by the discharging of the plates.
- 6. The generator of claim 5, wherein the at least two the conductor plates and dielectric insulation form a cylindrical structure.
- 7. The generator of claim 5, wherein the terminals are a pair of terminals and wherein each plate is connected to one of the terminals which is opposite to one other of the terminals that is connected to an adjacent plate.
- 8. The generator of claim 5, further comprising an air gap between the terminals, an arc formed by breaking down of the air gap and discharging the plates, thereby forming a high rate magnetic flux change within a loop of a sheet current boundary.
- 9. A pulse generator comprising at least two plates, dielectric insulation between the at least two plates, terminals connected to the plates, a power source connected to the terminals for charging the plates and spaced electrodes connected to the plates for discharging the plates, and the plates forming a single turn sheet current by the discharging of the plates, wherein at least two of the plates form a capacitor and at least one of the at least two plates is an inductor.
- 10. The generator of claim 9, further comprising a resonant circuit formed by an inductance of the inductor and a capacitance of the capacitor.
- 11. The generator of claim 10, further comprising a damped sinusoidal current waveform formed by a sudden discharge of the inductance and capacitance of the plates.
- 12. A pulse generator comprising at least two plates, dielectric insulation between the at least two plates, terminals connected to the plates, a power source connected to the terminals for charging the plates and spaced electrodes connected to the plates for discharging the plates, and the plates forming a single turn sheet current by the discharging of the plates, wherein the terminals are disposed along a full length of edges of the cylindrical plates.
- 13. A pulse generator comprising a dielectric tube, and a capacitor/coil stack of single alternate layers of conductors and dielectric material on the tube and an inductor on an inside of the tube.
- 14. The generator of claim 13, the inductor further comprising secondary winding on the tube.
- 15. The generator of claim 14, wherein the winding is, helical.
- 16. The generator of claim 14, further comprising an insulating barrier between the stack and the secondary winding.
- 17. The generator of claim 14, further comprising terminals at ends of the winding for electrical connection to a high voltage output.
- 18. The generator of claim 13, wherein the conductors comprise conducting foil layers.
- 19. The generator of claim 18, further comprising a clamping device, terminals connected to the stack, wherein the layers are connected to the terminals by sandwiching between the terminals and the terminal clamp.
- 20. A pulse generator comprising a dielectric tube, and a capacitor/coil stack of alternate layers of conductors and dielectric material on the tube, wherein the conductors comprise conducting foil layers, and wherein the layers are in odd numbers.
- 21. The generator of claim 20, wherein inner and outer layers are connected to a terminal for maintaining the inner and outer layers at a similar potential.
- 22. A pulse generator comprising a dielectric tube, and a capacitor/coil stack of alternate layers of conductors and dielectric material on the tube, wherein the conductors comprise conducting foil layers, and wherein the terminals are a rail gap switch.
- 23. A pulse generator apparatus comprising a primary coil capacitor having spaced sheet conductors coiled in a tube and having ends of the conductors terminating in a gap extending in axial direction along the tube, and first and second terminals mounted at opposite sides of the gap, the spaced sheet conductors alternately connected to the first terminal and connected to the second terminal.
- 24. The apparatus of claim 23, further comprising a trigger power source connected to the terminals for charging the spaced sheet conductors.
- 25. The apparatus of claim 24, wherein the terminals further comprise discharge electrodes.
- 26. The apparatus of claim 25, wherein the terminals and discharge electrodes extending in parallel axial directions.
- 27. The apparatus of claim 26, wherein the trigger power source charges the spaced sheet conductors up to breakdown voltage between the discharge electrodes for abruptly short circuiting the electrodes and forming an arc across the electrodes, and discharging the plates and forming a primary sheet current loop.
- 28. The apparatus of claim 23, further comprising a secondary circuit having a multiple turn secondary conductor coil spaced along the primary coil capacitor and arranged in a tubular condition.
- 29. The apparatus of claim 28, wherein the secondary conductor coil is concentrically positioned with the primary coil conductor.
- 30. The apparatus of claim 29, wherein the secondary conductor coil comprises multiple helical loops.
- 31. The apparatus of claim 28, wherein the secondary conductor coil comprises a jelly roll-like rolled sheet conductor having spaced convolutions.
- 32. The apparatus of claim 28, wherein the secondary circuit further comprises an arc gap switch, a pulsed power load and an energy storing system connected in parallel to the secondary conductor coil.
- 33. The apparatus of claim 32, wherein the energy storing system comprises a bank of capacitors connected in parallel and plural inductors connected in series with the capacitors, and a charging supply connected to the capacitors and to the inductors for charging the capacitors.
- 34. The method of pulse generation, comprising providing power from a high voltage generator driver to first and second terminals connected to a primary capacitor coil having stacked and coiled conductive sheets spaced by dielectric material for forming a capacitor, and alternately connected to the first and second terminals, and storing power in the stacked, coiled conductive sheets, shorting the terminals and discharging power from the coiled sheets, thereby creating a sheet current loop.
- 35. The method of claim 34, further comprising transforming power from the sheet current loop into a secondary coil having a multiple convolution step-up flat conductor coil concentric with the stacked and coiled sheets of the primary capacitor coil, and supplying power from the secondary coil through a power gap for igniting an arc across the power gap, supplying power from a high energy pulse-forming network through the arc to a pulsed power load, and recharging the pulse-forming network with power from a charging supply.
Parent Case Info
This application claims benefit of U.S. Provisional application No. 60/096,157 filed Aug. 11, 1998.
Government Interests
This invention was made with Government support under Contract DASG60-97-C-0003 awarded by the Ballistic Missile Defense Organization. The Government has certain rights in this invention.
US Referenced Citations (11)
Provisional Applications (1)
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Number |
Date |
Country |
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60/096157 |
Aug 1998 |
US |