Claims
- 1. An antenna array comprising:a plurality of unit cells, each unit cell including: first array of antenna elements; and at least one additional array of antenna elements, interspersed within said first array of antenna elements; wherein said unit cells are disposed such that said first arrays collectively form a first sub-array to receive a radio frequency (RF) signal in a first sub-band of a frequency band, and said at least one additional arrays collectively form a respective at least one additional sub-array to receive said RF signal in a respective at least one remaining sub-band of said frequency band.
- 2. The antenna of claim 1 wherein the antenna elements of said first sub-array and said at least one sub-array are selected from the group consisting of dipole elements, bow-tie elements, spiral elements, and micro-strip patches.
- 3. The antenna of claim 1 wherein the antenna elements of said first sub-array and said at least one sub-array are disposed one-half of one free-space wavelength apart.
- 4. The antenna of claim 1 wherein the antenna elements of said first sub-array and said at least one sub-array are disposed to not allow grating lobes within a predetermined angle of scan.
- 5. The antenna of claim 1 wherein said at least one array of each of the unit cells comprises:a second array of elements; and a third array of elements; and wherein said second arrays collectively form a second sub-array to receive said RF signal in a second sub-band of said frequency band and said third arrays collectively form a third sub-array to receive said RF signal in a third sub-band of said frequency band.
- 6. The antenna of claim 5 wherein said first sub-band comprises frequencies between 0.3 and 1.0 GHz, said second sub-band comprises frequencies between 1.0 and 3.5 GHz, and said third sub-band comprises frequencies between 3.5 and 12.4 GHz.
- 7. The antenna of claim 1 wherein said plurality of unit cells are disposed on a high-impedance surface.
- 8. The antenna of claim 7 wherein said high-impedance surface comprises:a substrate; and a multiplicity of metallic patches disposed in a spaced apart relation on said a substrate; wherein each of said metallic patches is coupled its respective adjacent metallic patches by a thin transmission line.
- 9. A phased array antenna system comprising:a plurality of unit cells, each unit cell including: a first array of antenna elements; and at least one additional array of antenna elements, interspersed within said first array of antenna elements; wherein said unit cells are disposed such that said first arrays collectively form a first sub-array to receive a radio frequency (RF) signal in a first sub-band of a frequency band, and said at least one additional arrays collectively form a respective at least one additional sub-array to receive said RF signal in a respective at least one remaining sub-band of said frequency band; a plurality of beamforming networks for combining the replicas of said RF signal received by the antenna elements of said first sub-array and said at least one additional sub-array to form a plurality of output beams.
- 10. The phased array system of claim 9 further comprising:a low noise amplifier (LNA) bank for amplifying said replicas; and a plurality feed networks for coupling said replicas to a respective one of said plurality of beamforming networks; and an adaptive control processor for controlling said plurality of beamforming networks.
- 11. The phased array system of claim 9 wherein the antenna elements of said first sub-array and said at least one additional sub-array are selected from the group consisting of dipole elements, bow-tie elements, spiral elements, and micro-strip patches.
- 12. The phased array system of claim 9 wherein the antenna elements of said first sub-array and said at least one additional sub-array are disposed one-half of one free-space wavelength apart.
- 13. The phased array system of claim 9 wherein the antenna elements of said first sub-array and said at least one additional sub-array are disposed to not allow grating lobes within a predetermined angle of scan.
- 14. The phased-array system of claim 9 wherein said at least one array of each of the unit cells comprises:a second array of antenna elements; and a third array of antenna elements; and wherein said second arrays collectively form a second sub-array to receive said RF signal in a second sub-band of said frequency band and said third arrays collectively form a third sub-array to receive said RF signal in a third sub-band of said frequency ban.
- 15. The phased array system of claim 14 wherein said first sub-band comprises frequencies from 0.3 to 1.0 GHz, said second sub-band comprises frequencies between 1.0 GHz to 3.5 GHz, and said third sub-band comprises frequencies between 3.5 GHz and 12.4 GHz.
- 16. The phased array system of claim 9 wherein said plurality of unit cells are disposed on a high-impedance surface.
- 17. The phased array system of claim 16 wherein said high-impedance surface comprises:a substrate; and a multiplicity of metallic patches disposed in a spaced apart relation on said substrate; wherein each of said metallic patches is coupled its respective adjacent metallic patches by a thin transmission line.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application claims benefit of U.S. provisional patent application Ser. No. 60/234,585, filed Sep. 22, 2000, which is herein incorporated by reference.
GOVERNMENT RIGHTS IN THIS INVENTION
This invention was made with U.S. government support under contract number 73010 NMA202-97-D-1033/0019. The U.S. government has certain rights in this invention.
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Foreign Referenced Citations (2)
Number |
Date |
Country |
0 372 451 |
Jun 1990 |
EP |
WO 9917397 |
Apr 1999 |
WO |
Non-Patent Literature Citations (1)
Entry |
PCT Search Report, PCT/US 01/29255, international filing date Sep. 18, 2001. |
Provisional Applications (1)
|
Number |
Date |
Country |
|
60/234585 |
Sep 2000 |
US |