Claims
- 1. A ferrite phase shifter, comprising:
an input; an output; a waveguide structure disposed between the input and the output; and ferrite material loading and at least partially filling the waveguide structure, wherein the waveguide structure includes
a first substantially cylindrical element having a first radius, a second substantially cylindrical element having a length and a second radius, the second radius being less than the first radius, the second cylinder having an opening formed therethrough extending the length of the second cylinder, the second cylinder being disposed within the first cylinder such that the first and second cylinders have a common axis of symmetry, a first substantially disk-shaped septum centrally disposed within the second cylinder such that the second cylinder and the first septum share the common axis of symmetry, the first septum having a circumference, a center, and a pie-shaped aperture formed therethrough extending through the circumference and tapering to the center, the opening of the second cylinder being aligned with the pie-shaped aperture so as not to obstruct the pie-shaped aperture, and a second substantially planar septum disposed within the first cylinder such that the second septum extends from the first cylinder to the center of the second septum while bisecting the pie-shaped aperture and being approximately perpendicular to the first septum, the second septum being configured to separate the input from the output of the ferrite phase shifter.
- 2. The ferrite phase shifter of claim 1 wherein the ferrite material loads and totally fills the waveguide structure.
- 3. The ferrite phase shifter of claim 1 further including a plurality of cover portions configured to enclose the ferrite material within the waveguide structure.
- 4. The ferrite phase shifter of claim 1 further including means for generating and transversely applying a magnetic field to the ferrite material.
- 5. The ferrite phase shifter of claim 4 wherein the generating and applying means is electrically controllable.
- 6. A method of fabricating a ferrite phase shifter comprising the steps of:
fabricating a waveguide structure including the steps of providing a first substantially cylindrical element having a first radius, providing a second substantially cylindrical element having a length and a second radius, the second radius being less than the first radius, the second cylinder having an opening formed therethrough extending the length of the second cylinder, disposing the second cylindrical element within the first cylindrical element such that the first and second cylinders have a common axis of symmetry, providing a first substantially disk-shaped septum having a circumference, a center, and a pie-shaped aperture formed therethrough extending through the circumference to the center of the first septum, disposing the first septum within the second cylindrical element such that the first septum is centrally located within the second cylinder and the first septum and the second cylinder share the common axis of symmetry, the opening of the second cylinder being aligned with the pie-shaped aperture so as not to obstruct the pie-shaped aperture, providing a second substantially planar septum, and disposing the second septum within the first cylinder such that the second septum extends from the first cylinder to the center of the second septum while bisecting the pie-shaped aperture and being approximately perpendicular to the first septum, thereby separating an input from an output of the ferrite phase shifter; and loading and at least partially filling the waveguide structure with ferrite material.
- 7. The method of claim 6 wherein the loading step includes loading and totally filling the waveguide structure with the ferrite material.
- 8. The method of claim 6 further including the steps of providing a plurality of cover portions and disposing the cover portions on opposing sides of the waveguide structure to enclose the ferrite material within the guide.
- 9. The method of claim 6 further including the steps of generating and transversely applying a magnetic field to the ferrite material.
- 10. The method of claim 9 wherein the generating step includes electromagnetically generating the magnetic field.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority of U.S. Provisional Patent Application No. 60/298,277 filed Jun. 14, 2001 entitled COMPACT HIGH POWER ANALOG ELECTRICALLY CONTROLLED PHASE SHIFTER.
Provisional Applications (1)
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Number |
Date |
Country |
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60298277 |
Jun 2001 |
US |