Claims
- 1. An extended interaction output circuit for interacting with a modulated electron beam and outputting RF electromagnetic energy, said circuit comprising:
- a plurality of linearly disposed cavities being separated by disks having a single respective hole for transmission of said electron beam and for coupling said electromagnetic energy between said adjacent cavities;
- wherein, said linearly disposed cavities act as an RF filter having successively tapered impedances to reduce reflections of said electromagnetic energy propagating through said circuit.
- 2. The circuit of claim 1, further comprising N of said linear disposed cavities where N is an integer which is greater than one, and said RF filter has an image impedance at a center of the Nth cavity of Z.sub.1 /N.
- 3. The circuit of claim 1, wherein said linear disposed cavities respectively have first, second and third image impedances and a load impedance associated therewith, said second image impedance being approximately one-half of said first image impedance, said third image impedance being approximately one-third of said first image impedance, and said load impedance being approximately one-fourth of said first image impedance.
- 4. The circuit of claim 1, wherein said holes of successive ones of said disks increase in size in steps along said circuit.
- 5. The circuit of claim 1, wherein said plurality of linearly disposed cavities respectively comprises a first cavity, a second cavity, a third cavity, and a fourth cavity, each of said cavities being cylindrically-shaped with respective diameters and widths, said second cavity having a diameter greater than that of said first cavity.
- 6. The circuit of claim 5, wherein said third cavity has a diameter greater than the diameter of said second cavity.
- 7. The circuit of claim 5, wherein said first cavity has a width greater than the width of said second cavity, and said second cavity has a width greater than the respective width of either one of said third or fourth cavities.
- 8. The circuit of claim 1, wherein each of said linearly disposed cavities introduces a corresponding 90 degree phase shift to said beam.
- 9. The circuit of claim 1, wherein there are four of said linearly disposed cavities.
- 10. An extended interaction output circuit for interacting with a modulated electron beam and for outputting RF electromagnetic energy, said circuit comprising:
- a first cylindrically-shaped linear cavity having an associated diameter and width;
- a second cylindrically-shaped linear cavity respectively having a diameter greater than and a width less than the diameter and width of said first linear cavity and a first disk adjoining said first and said second linear cavities, said first disk having a first hole permitting transmission of said electron beam between said first linear cavity and said second linear cavity;
- a third cylindrically-shaped linear cavity respectively having a diameter greater than and a width less than the diameter and width of said second linear cavity and a second disk adjoining said second linear cavity and said third linear cavity, said second disk having a hole permitting transmission of said electron beam between said second linear cavity and said third linear cavity, said second hole having a size greater than said first hole; and
- a fourth cylindrically-shaped linear cavity having a third disk adjoining said third and fourth linear cavities, said third disk having a third hole having a size greater than said second hole;
- wherein, said cavities act as an RF filter having successively tapered impedances.
- 11. The extended interaction output circuit of claim 10, wherein said RF filter has first, second and third image impedances and a load impedance, associated with said first, second, third and fourth linear cavities, respectively, said second image impedance being approximately one-half of said first image impedance, said third image impedance being approximately one-third of said first image impedance, and said load impedance being approximately one-fourth of said first image impedance.
- 12. The extended interaction output circuit of claim 10, further comprising an output section having radially disposed waveguides, said waveguides for extracting RF electromagnetic energy from said fourth linear cavity.
- 13. The extended interaction output circuit of claim 10, wherein each of said linear cavities introduces a corresponding 90 degree phase shift to said RF electromagnetic energy.
- 14. An extended interaction output circuit for interacting with a modulated electron beam and for outputting RF electromagnetic energy, said circuit comprising:
- a plurality of linearly disposed cavities having an axially extending beam tunnel for permitting the traveling therethrough of said modulated electron beam and for coupling therethrough said electromagnetic energy between successive ones of said cavities; and
- a plurality of annular disks each having a single respective hole providing said beam tunnel, each of said disks respectively separating adjacent ones of said cavities;
- wherein, relative proportional dimensions of successive ones of said holes and of successive ones of said cavities generally increases in steps along an axial extent of said circuit.
- 15. The extended interaction output circuit of claim 14, wherein said cavities each respectively comprise a width that decreases in steps along the axial extent of said circuit.
- 16. The extended interaction output circuit of claim 14, wherein said plurality of linearly disposed cavities comprises a first cavity, a second cavity, a third cavity, and a fourth cavity.
- 17. The extended interaction output circuit of claim 16, wherein said RF filter has first, second and third image impedances and a load impedance, associated with said first, second, third and fourth linear cavities, respectively, said second image impedance being approximately one-half of said first image impedance, said third image impedance being approximately one-third of said first image impedance, and said load impedance being approximately one-fourth of said first image impedance.
- 18. The extended interaction output circuit of claim 14, wherein said cavities act as an RF filter having successively tapered impedances for reducing reflections of RF electromagnetic energy propagating through said circuit.
- 19. The extended interaction output circuit of claim 18, further comprising N of said linear disposed cavities where N is an integer greater than one and said RF filter has an image impedance at the Nth cavity of Z.sub.1 /N.
- 20. The extended interaction output circuit of claim 14, wherein spacing between said adjacent ones of said cavities provides a corresponding 90 degree phase shift to said beam.
- 21. The extended interaction output circuit of claim 14, wherein there are four of said linearly disposed cavities.
- 22. A method for interacting with a modulated electron beam and outputting RF electromagnetic energy, said method comprising the steps of:
- focusing said modulated electron beam through a plurality of linearly disposed cylindrically-shaped cavities via a beam tunnel axially extending therethrough, said cavities each having an associated diameter and width;
- coupling said RF electromagnetic energy between successive ones of said cavities via said beam tunnel; and
- successively tapering impedances of said cavities to reduce reflections of said RF electromagnetic energy.
- 23. The method of claim 22 wherein said tapering step further comprises separating adjacent ones of said cavities by annular disks having a respective circular hole providing said beam tunnel, and successively increasing diameter of said holes and of said cavities in steps along an axial extent thereof.
- 24. The method of claim 23, wherein said tapering step further comprises selecting spacing between said adjacent ones of said cavities to provide a corresponding 90 degree phase shift to said beam.
- 25. The method of claim 23, wherein said tapering step further comprises decreasing said width of successive ones of said cavities in steps along an axial extent thereof.
GOVERNMENT CONTRACT
This invention has been developed and reduced to practice under contract with the United States Government, Contract No. DAAH-01-90-C-A013, which has a license to practice the invention.
US Referenced Citations (4)
Non-Patent Literature Citations (2)
Entry |
"The Theory of Disk-Loaded Wave Guides" by E. L. Chu and W. W. Hansen, Journal of Applied Physics, vol. 18, Nov. 1947, pp.: 996-1008. |
"The Design of High-Power Traveling-Wave Tubes" by M. Chodorow and E. J. Nalos, Proceedings of the IRE, May 1956, pp.: 649-659. |