Claims
- 1. An antenna reflector architecture comprising:a first reflector having a first geometry and being effectively reflective to RF energy at a first frequency band; a second reflector adjoining said first reflector to form therewith a composite reflector having a second geometry different from said first geometry that defines therewith a prescribed radiation profile for said antenna at said first frequency band; and wherein said second reflector has plural regions of respectively different reflectivities at said first frequency band which are effective to reduce at least one selected sidelobe of said prescribed radiation profile of said antenna.
- 2. The antenna reflector architecture according to claim 1, wherein said first reflector has a generally circular or polygonal geometry that forms an interior solid reflector component of said composite reflector, and said second reflector has a generally ring-shaped circular or polygonal geometry that forms an exterior reflector component that surrounds and is adjacent to the perimeter of said first reflector.
- 3. The antenna reflector architecture according to claim 1, further including a support structure for said first and second reflectors, and being configured to reduce reflections towards the coverage area from RF energy passing through said second reflector.
- 4. The antenna reflector architecture according to claim 3, wherein said support structure is covered with material that absorbs RF energy at said second frequency band.
- 5. The antenna reflector architecture according to claim 3, wherein said support structure is configured to deflect RF energy in said second frequency band away from the coverage area of said composite reflector.
- 6. The antenna reflector architecture according to claim 3, wherein said support structure has a reduced reflective cross section in the direction of incidence of RF energy in said second frequency band.
- 7. The antenna reflector architecture according to claim 3, wherein said support structure is comprised of materials which do not reflect significant RF energy in said second frequency band.
- 8. The antenna reflector architecture according to claim 1, wherein said second reflector comprises multiple adjoining concentric annular rings of respectively different reflectivities at said first frequency band which are effective to reduce a first sidelobe of said prescribed radiation profile of said antenna.
- 9. The antenna reflector architecture according to claim 1, wherein a respective annular ring of said second reflector comprises plural overlapping annular ring layers containing respectively different resonant elements that are resonant at respectively different resonant frequencies and provide a composite reflectivity characteristic in accordance with a prescribed relationship between said respectively different resonant frequencies.
- 10. The antenna reflector architecture according to claim 1, wherein a respective annular ring of said second reflector comprises first and second overlapping annular ring layers, respectively containing first and second resonant elements that are resonant at first and second resonant frequencies and provide said respective annular ring with a composite reflectivity characteristic that is generally flat over a prescribed bandwidth between said first and second resonant frequencies.
- 11. The antenna reflector architecture according to claim 1, wherein said second reflector comprises dichroic rings, each of which contains multiple ring regions of respectively different reflectivities at first and second frequency bands which are effective to reduce at least one selected sidelobe of said prescribed radiation profile of said antenna at each of said first and second frequency bands.
- 12. The composite antenna reflector architecture having a radiation profile and being configured to reduce one or more selected sidelobe portions of said radiation profile, said architecture comprising a generally circular or polygonal, interior solid shaped reflector sector adjacent at its perimeter to a generally annular reflector sector, said interior solid region being effectively totally reflective to incident RF energy, while said annular reflector sector contains a plurality of rings having respectively different partial reflectivities, that alter illumination taper and reduce selected sidelobe energy in the overall radiation profile of the antenna.
- 13. The composite antenna reflector architecture according to claim 12, wherein a respective one of said rings has a generally constant reflection coefficient across the radius of the ring.
- 14. The composite antenna reflector architecture according to claim 12, wherein a respective one of said rings has a reflection coefficient that varies across the radius of the ring.
- 15. The composite antenna reflector architecture according to claim 14, wherein a respective one of said rings has a reflection coefficient that varies across the radius of the ring as function radial distance from the center of said solid reflector.
- 16. The composite antenna reflector architecture according to claim 12, wherein values of respective reflection coefficients for respective rings of said annular sector decrease in an outward radial direction so as to realize a tapered reflection coefficient profile across said composite antenna reflector architecture.
- 17. The composite antenna ref lector architecture according to claim 12, wherein respective ones of said plurality of rings have respectively different resistivities.
- 18. The composite antenna reflector architecture according to claim 12, wherein a respective ring of said annular reflector sector comprises plural overlapping annular ring layers containing respectively different resonant elements that are resonant at respectively different resonant frequencies and provide a composite reflectivity characteristic in accordance with a prescribed relationship between said respectively different resonant frequencies.
- 19. The composite antenna reflector architecture according to claim 12, wherein a respective ring of said annular reflector sector comprises first and second overlapping annular ring layers, respectively containing first and second resonant elements that are resonant at first and second resonant frequencies and provide said respective annular ring with a composite reflectivity characteristic that is generally flat over a prescribed bandwidth between said first and second resonant frequencies.
- 20. The composite antenna reflector architecture according to claim 12, wherein said annular reflector sector comprises dichroic rings, each of which contains multiple ring regions of respectively different reflectivities at first and second frequency bands which are effective to reduce at least one selected sidelobe of said radiation profile at each of said first and second frequency bands.
- 21. A frequency selective structure comprising a laminate of layers containing respectively different slotted resonant elements that are resonant at respectively different resonant frequencies spectrally spaced so as to provide at least one composite frequency response characteristic that is generally flat over a prescribed bandwidth.
- 22. The frequency selective structure according to claim 21, wherein respective layers of said laminate contain multiple sets of different slotted elements, having respective composite reflectivity frequency response characteristics that combine to provide a plurality of spectrally separated composite frequency response characteristics that are each generally flat over a prescribed bandwidth.
- 23. The frequency selective structure according to claim 22, wherein said respective layers of said laminate comprise mutually overlapping layers, containing first and second sets of resonant elements that are resonant at first and second resonant frequencies and provide a first composite reflectivity characteristic that is generally flat over a first prescribed bandwidth between said first and second resonant frequencies, and third and fourth sets of resonant elements that are resonant at third and fourth resonant frequencies and provide a second composite reflectivity characteristic that is generally flat over a second prescribed bandwidth between said third and fourth resonant frequencies, spectrally separated from said first and second resonant frequencies.
CROSS-REFERENCE TO RELATED APPLICATION
The present application is a continuation-in-part of U.S. patent application Ser. No. 09/666,008, filed Sep. 19, 2000 now U.S. Pat. No. 6,421,002, which is a continuation of Ser. No. 09/392,134 filed Sep. 8, 1999 U.S. Pat. No. 6,140,978, issued Oct. 31, 2000, entitled “Dual Band Hybrid Solid/Dichroic Antenna Reflector” (hereinafter referred to as the '978 patent), assigned to the assignee of the present application and the disclosure of which is incorporated herein.
US Referenced Citations (26)
Non-Patent Literature Citations (1)
Entry |
David C. Jenn, and Willard V.T. Rusch, “Low-Sidelobe Reflector Synthesis and Design Using Resistive Surfaces” IEEE Transactions on Antennas and Propagation, vol. 39, No. 9, Sep. 1991. |
Continuations (1)
|
Number |
Date |
Country |
Parent |
09/392134 |
Sep 1999 |
US |
Child |
09/666008 |
|
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09/666008 |
Sep 2000 |
US |
Child |
09/825134 |
|
US |