Claims
- 1. An antenna system for use on a spacecraft comprising:a main reflector; a subreflector; and, a feed array comprised of a plurality of separate feeds arranged in a preselected configuration so that the feeds are aligned along a predetermined contour, said feed array, subreflector and main reflector oriented to define a front-fed dual reflector antenna geometry, each of the feeds provides a separate illumination beam, the feed array is coupled to a feed network, which acts to combine the illumination beams of clusters of a preselected number of feeds to produce a single composite illumination beam from each cluster; each composite illumination beam has a central ray which is directed to be incident upon a separate preselected location on said subreflector, the subreflector is configured to receive each composite illumination beam at said predetermined location on said subreflector and direct each said composite illumination beam towards said main reflector, the main reflector is positioned to receive each composite illumination beam from the subreflector and direct each composite illumination beam in a predetermined direction so that each composite illumination beam forms an antenna beam that impinges a predetermined coverage area on the Earth, each antenna beam defines a separate coverage cell in the coverage area, wherein the position and orientation of the feeds, the subreflector and the main reflector provides antenna beams within a preselected coverage area.
- 2. An antenna system as in claim 1, wherein said feed network provides a preselected signal intensity and phase weighting of each of the clusters of feeds to define the composite illumination beams in a predetermined manner.
- 3. An antenna system as in to claim 2, wherein the feeds in the feed array, the subreflector and the main reflector are oriented to provide a plurality of approximately symmetrically shaped antenna beams.
- 4. An antenna system as in claim 3, wherein said antenna beams are adjacently located on the Earth.
- 5. An antenna system as in claim 4, wherein said preselected coverage area is an earth field of view from a satellite in a geosynchronous orbit.
- 6. An antenna system as in claim 5, wherein each said cluster has a central feed horn, adjacent antenna beams being created by clusters having adjacent central feed horns.
- 7. An antenna system as in claim 6, wherein each cluster of feeds is comprised of seven feeds and each cluster generates a single composite illumination beam.
- 8. An antenna system as in claim 3, wherein said main reflector further comprises a center point, said central ray of each said composite illumination beam directed to be incident upon said center point.
- 9. An antenna system as in claim 3, wherein said main reflector, subreflector and feed array are configured so that each said composite illumination beam is directed towards the Earth from said main reflector substantially free of blockage by said subreflector and feed array.
- 10. An antenna system as in claim 9, wherein said subreflector is greater than approximately 50 wavelengths at a frequency of operation.
- 11. The antenna system as in claim 10, wherein the configuration of select feeds in the feed array, subreflector and main reflector satisfy a cross-polarization cancellation condition give by tan γ2=1M×tan φ2,where γ is the angle from the main reflector axis to the subreflector axis, θ is the angle from the subreflector axis to the focal axis, and M is the magnification factor.
- 12. An antenna system for a satellite comprising:a plurality of subreflector and main reflector combinations; and, a feed array associated with each subreflector and main reflector combination, wherein each subreflector and main reflector combination and associated feed array is oriented to define a separate front-fed dual reflector geometry, each said subreflector and main reflector combination and associated feed array together comprising a front-fed dual reflector antenna, each said feed array is comprised of a plurality of feeds which generate a plurality of illumination beams each of which having a central ray, the feeds of each said feed array are positioned so that the central ray of each illumination beam is directed towards a separate preselected location on one of the subreflectors, each subreflector configured to direct each illumination beam towards the main reflector within the same front-fed dual reflector antenna, each main reflector directs each illumination beam in a predetermined direction so that each illumination beam generates an antenna beam which impinges a predetermined coverage area on the Earth, wherein the antenna beams define separate coverage cells in a coverage area, wherein the coverage cells are arranged so that no coverage cell defined by an antenna beam generated from an illumination beam from one subreflector and main reflector combination is contiguous with another coverage cell defined by another antenna beam generated from an illumination beam from the same subreflector and main reflector combination.
- 13. An antenna system as in to claim 12, wherein each front-fed dual reflector antenna is oriented to provide a plurality of approximately equivalent antenna beams.
- 14. An antenna system as in claim 13, wherein each front-fed dual reflector antenna is configured to provide a plurality of approximately symmetrically shaped antenna beams.
- 15. An antenna system as in claim 14, wherein said antenna beams are adjacently located on the Earth.
- 16. An antenna system as in claim 15, wherein each main reflector and subreflector combination and associated feed array are configured so that each said illumination beam is directed towards the Earth from said main reflector substantially free of blockage by said subreflector and feed array.
- 17. An antenna system as in claim 16, wherein said preselected coverage is an earth field of view from a satellite in a geosynchronous orbit.
- 18. An antenna system as in claim 17, wherein each feed in each feed array provides a separate illumination beam.
- 19. An antenna system as in claim 12, wherein the configuration of each front-fed dual reflector antenna satisfy a cross-polarization cancellation condition given by tan tan γ2=1M×tan φ2,where γ is the angle from the main reflector axis to the subreflector axis, θ is the angle from the subreflector axis to the focal axis, and M is the magnification factor.
- 20. An antenna system as in claim 12, wherein each said main reflector further comprises a center point, said central ray of each said illumination beam directed to be incident upon said center point.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is related to three commonly assigned applications entitled: “A Compact Folded Optics Antenna System For Providing Adjacent, High Gain Antenna Beams”, U.S. patent application Ser. No. 09/232,454, having inventors Romulo F. Jimenez Broas, David L. Brundrett, Charles W. Chandler and Te-Kao Wu; “A Compact Side-Fed Dual Reflector System For Providing Adjacent, High Gain Antenna Beams”, U.S. patent application Ser. No. 09/232,452, having inventors Ann L. Peebles, Charles W. Chandler and Louis C. Wilson; and, “A Compact Offset Gregorian Antenna System For Providing Adjacent, High Gain Antenna Beams”, U.S. patent application Ser. No. 09/232,450, having inventors Charles W. Chandler, Gregory P. Junker and Ann L. Peebles; filed on the same date as this application. These applications are incorporated herein by reference in their entirety.
Non-Patent Literature Citations (1)
Entry |
Rolf Jorgensen et al., “Dual Offset Reflector Multibeam Antenna for International Communications Satellite Applications,” Dec. 1985, IEEE Transactions On Antennas And Propagation, vol. AP-33, No. 12. |