Claims
- 1. A rotating beam radio-frequency amplifier, including:
- a cylindrical cathode having an outer curved surface for producing electrons;
- radio-frequency waveguide input means including means for establishing a traveling wave for forming said electrons into a beam and rotating said beam around said cathode;
- means for adding energy to said beam during said rotation; and
- output means for extracting the energy of the beam, said input and output means including waveguides that support traveling waves at a frequency that is an integral multiple of one or more of the frequency of said established traveling wave.
- 2. The amplifier of claim 1, wherein said waveguide input means includes a circular ring-shaped waveguide positioned coaxial and coplanar with said cathode, said waveguide having an inner wall and an outer wall, each of said walls having a central section that is transparent to the passage of electrons therethrough.
- 3. The amplifier of claim 2, further including means for thermionically heating said cathode to produce a cloud of electrons thereabout, said cathode being spaced apart from said waveguide to form an annular space therebetween.
- 4. The amplifier of claim 3, further including biasing means for confining said cloud of electrons in the space between said cathode and said waveguide to control the angular width and magnitude of the beam.
- 5. The amplifier of claim 4, wherein said biasing means includes electric field means.
- 6. The amplifier of claim 4, wherein said biasing means includes magnetic field means.
- 7. The amplifier of claim 4, wherein said biasing means includes electric and magnetic field means.
- 8. The amplifier of claim 2, further including first and second grids mounted in the central section of said inner and outer walls respectively of said waveguide.
- 9. The amplifier of claim 2, wherein said outer surface of said cathode is coincident with said inner wall of said waveguide and is within the central section of said inner wall.
- 10. The amplifier of claim 1, wherein said means for adding energy to the beam includes a direct current potential source connected across said waveguide input means and said output means.
- 11. A method for amplifying radio-frequencies, including the steps of:
- developing a cylindrical cloud of electrons;
- supporting an input traveling wave at a frequency that is an integral multiple of one or more of the frequency of the traveling wave;
- applying the rotating electrical field of the traveling wave to the cloud of electrons to extract electrons therefrom and form them into a beam rotating around the cloud in synchronism with the rotating field, all positions of the rotating beam being coplanar with the cloud;
- adding energy to the beam of electrons to form a high-energy beam;
- developing and supporting an output traveling wave in response to the high-energy beam at the same frequency as the frequency of the input traveling wave; and
- extracting energy from the traveling wave to produce a high power level radio frequency.
- 12. The method of claim 11, wherein said electron cloud is thermionically produced.
- 13. The method of claim 11, wherein said electron cloud is developed by utilizing the rotating electrical field to produce multipactoring.
- 14. The method of claim 11, wherein a bias field is utilized to confine the electrons to the cloud.
- 15. The method of claim 14, wherein the bias field is a direct current field.
- 16. The method of claim 15, wherein the bias field is a magnetic field.
BACKGROUND OF THE INVENTION
The invention disclosed herein was made under, or in, the course of United States Department of Energy Contract No. EY-76-C-03-0515 with Stanford University.
US Referenced Citations (7)