Claims
- 1. A method of producing a modulated particle beam using a split cavity oscillator/modulator comprising the steps of:
- forming a uniform particle beam having a specified beam current and possessing a space charge which is near a limiting value for the split cavity modulator but which does not exceed said limit,
- introducing said uniform particle beam along a direction of travel which positions said beam for entry into the split cavity modulator having electromagnetic oscillatory modes associated therewith wherein entry by said beam into the split cavity modulator generates an unstable mode for said beam thereby causing the generation of an oscillating electromagnetic field within the split cavity modulator wherein said unstable mode will cause saturation of the cavity when the electric field strength of the oscillating electromagnetic field becomes equal to the energy associated with said particle beam resulting in said beam being stopped when the oscillating electromagnetic field opposes the direction of travel of said beam, and permitting the passage of the beam out of the cavity when the oscillating electromagnetic field is in a like direction to the direction of travel of the beam, resulting in a pulsed modulation of said beam when the beam exits the cavity along the direction of travel,
- positioning a cavity splitting screen in a central position within the cavity to minimize amplitudes associated with said oscillating electromagnetic field to reduce the likelihood of an electrical breakdown.
- 2. The method of claim 1 involving placing resistive wires at select points in the cavity to connect respective nodes in the oscillatory field and thus, suppress undesirable oscillatory modes.
- 3. In combination, an apparatus comprising:
- (a) a first conducting screen mounted to a housing, and a second conducting screen mounted to said housing, thereby defining a cavity within aid housing between said first and second screens, where a directional input particle beam enters said cavity through said first screen; and
- (b) a third conducting screen mounted to said housing positioned between said first and second conducting screens to partition said cavity into a first region between said first and third conducting screens, and a second region between said second and third conducting screens, with said first and second regions coupled to each other;
- where within said first and second regions of said cavity, said input particle beam becomes unstable and generates an oscillating electromagnetic field having harmonics to a fundamental frequency of said cavity, and said electromagnetic field interacts with said input beam to generate an output modulated beam which passes through said second conducting screen to exit said cavity.
- 4. An apparatus as in claim 3 wherein said first, second, and third conducting screens are each comprised of metal.
- 5. An apparatus as in claim 3 further comprising said third conducting screen positioned midway between said first and second conducting screens.
- 6. An apparatus as in claim 3 wherein said cavity, said first and second and third conducting screens, and said housing are each annular.
- 7. An apparatus as in claim 3, further comprising resistive wires in said cavity mounted on and extending between said conducting screens at nodes of said oscillating electromagnetic field.
- 8. An apparatus as in claim 3, further comprising at least one extractor cavity coupled to said second conducting screen into which said output modulated beam passes and gives up energy to said extractor cavity thereby generating electromagnetic radiation therein.
- 9. An apparatus of claim 8, further comprising a transmission line connected to at least one of said extractor cavity to extract said electromagnetic radiation therefrom.
- 10. An apparatus as in claim 8, further comprising a waveguide connected to at least one of said extractor cavity to extract said electromagnetic radiation therefrom.
- 11. In combination, an apparatus comprising:
- (a) an annular resonant cavity contained within a conductive annular housing having a first conducting metal screen mounted to said housing whereby an input particle beam enters said cavity through said first screen along a direction of travel, and a second conducting metal screen also mounted to said housing whereby an output modulated beam passes;
- (b) a third annular conducting metal screen positioned midway between said first and said second conducting screens thereby partitioning said cavity into a first region defined by said first and third conducting screens which communicates with a second region defined by said second and third conducting screens,
- whereby, said input particle beam, upon entry to said cavity, loses energy to said cavity thus causing an electromagnetic field to be generated in said first and second regions of said cavity, said electromagnetic field oscillating at harmonics of a fundamental frequency of said cavity and interacting with said input particle beam to generate an output annular modulated beam which exits said cavity through said second conducting screen; and
- (c) a plurality of extraction cavities sequentially linked to said second conducting screen into which said output annular modulated beam enters, gives up energy, and generates electromagnetic waves therein, a first one of said extraction cavities is coupled to said second conducting screen and extending into a circular waveguide, and a second one of said extraction cavities coupled to said first extraction cavity and to said waveguide and further is coupled to a transmission line for outputting electromagnetic waves.
Government Interests
The United States Government has rights in this invention pursuant to Contract No. DE-AC04-76DP00789 between the Department of Energy and American Telephone and Telegraph Company.
US Referenced Citations (7)
Non-Patent Literature Citations (1)
Entry |
Krall, J. and Lau, Y. Y.; "Modulation of an intense beam by an external microwave source: Theory and Simulation"; Appl. Phys Lett; vol. 52, No. 6; Feb. 8, 1988; pp. 431-433. |