Claims
- 1. A hybrid parabolic reflector phased array antenna, adapted for deployment in space, comprising:a reflector support structure; a plurality of parabolic reflector cells mounted side by side in an open interior portion of the support structure; each reflector cell including an RF signal reflector and an array of the RF signal feed elements; each reflector having a flexible reflecting surface and a plurality of elongated edges defining a polygonal geometric shape, and including respective corner portions at the intersection of pairs of edges; respective rigid support members located at the corner portions of the reflector for stiffening the reflector and the elongated edges, and also for providing a support for the array of feed elements; a set of flexible support members extending between the rigid support members of each reflector cell and the respective array of feed elements for positioning the array above the RF signal reflector, and a mechanism located beneath each of the RF signal reflector for pulling the flexible reflecting surface down to a substantially parabolic shape.
- 2. An antenna structure according to claim 1 wherein the reflector support structure comprises a toroidal support structure.
- 3. An antenna structure according to claim 1 wherein said plurality of parabolic reflector cells are comprised of super element reflector cells arranged in a planar array.
- 4. An antenna according to claim 1, and additionally including a support member located at the edges of the reflecting surface to prevent stretching of the reflector along the edges.
- 5. An antenna according to claim 1 wherein said rigid support members comprise a plurality of elongated posts.
- 6. An antenna according to claim 1 wherein said set of flexible support members comprises wire support members.
- 7. An antenna according to claim 1 wherein said mechanism for pulling the reflecting surface down comprises a backup structure including a set of wires and tension cables.
- 8. An antenna according to claim 1 wherein said flexible reflecting surface comprises a reflector mesh.
- 9. An antenna according to claim 1 wherein said array of feed elements comprises a planar array of feed elements.
- 10. An antenna according to claim 9 wherein said array of feed elements in each reflector cell is selectively activated in groups of feed elements and wherein said groups are varied in position relative to a focal point of the array to steer a transmitted and/or received beam generated by one or more of the reflector cells.
- 11. An antenna according to claim 10 wherein the array is also steered by steering of the array factor.
- 12. An antenna according to claim 10 wherein the array is steered to a position where an undesired grating lobe appears for relieving a grating lobe problem.
- 13. An antenna according to claim 12 wherein the number of feed elements in at least one of the group is also reduced for relieving the gating lobe problem.
- 14. An antenna according to claim 10 wherein said groups of feed elements are randomly selected so as to be positioned about a predetermined position of the planar array of feed elements for relieving a grating lobe problem.
- 15. An antenna according to claim 10 wherein said groups of feed elements are gradually shifted from one position to another for relieving a gating lobe position.
- 16. An antenna according to claim 10 wherein said groups of feed elements are randomly positioned about respective focal points of the planar arrays for relieving a grating lobe problem.
- 17. A method of steering a transmitted and/or received beam of a phased array antenna system including a plurality of super element reflector cells each including a parabolic reflector element having a polygonal shape and a plurality of feed elements arranged in a planar array and being mounted on a support structure, comprising the steps of:activating the feed elements of each feed array in selected groups of feed elements at predetermined locations relative to the focal point of the respective array to achieve a course scan of the beam; and steering the array factor of the beam to achieve a fine scan of the beam.
- 18. A method according to claim 17 and additionally including the step of overlapping feed distributions of said feed array to gradually shift the feed center of the array to steer the beam between nominal beam positions.
- 19. A method according to claim 17 and additionally including the step of steering the beam via group selection to substantially the exact location of a grating lobe for relieving an undesirable grating lobe problem.
- 20. A method according to claim 19 and additionally including the step of reducing the number of feed elements selected in a group for relieving an undesirable grating lobe problem.
- 21. A method according to claim 17 and additionally including the step of randomly selecting groups of feed elements for positioning said groups about a predetermined position on the feed array for relieving an undesirable grating lobe problem.
- 22. A method according to claim 17 and additionally including the step of gradually shifting certain groups of feed elements from one position to another for relieving a grating lobe problem.
- 23. A method according to claim 17 and additionally including the step of selecting groups of feed elements so as to be randomly positioned about respective focal points of the planar arrays for relieving a grating lobe problem.
- 24. A method according to claim 17 and additionally including the step of overlapping feed distributions of said feed array to steer the feed array to the same position as the array factor peak position for relieving an undesirable grating lobe problem.
- 25. A method according to claim 17 and additionally including the step of stowing the antenna system in a collapsed state for launch and thereafter deploying the antenna for operation in space.
- 26. A phased-array-of-reflectors antenna comprising:plurality of reflector antennas pointed toward a common direction each comprising a reflector having a rim defining a polygonal geometric shape and each comprising a feed array disposed above the individual reflector; each reflector antenna being disposed adjacent to at least one other reflector antenna in the plurality of reflector antennas to form a phased array antenna using the plurality of reflector antennas as phased array antenna elements so that the signal energy from the plurality of reflector antennas combines to form a beam.
- 27. A phased reflector array according to claim 26, wherein the plurality of reflectors comprises four or more individual reflectors arranged substantially on a periodic reflector lattice.
- 28. A phased reflector array according to claim 27 wherein at least one of the feed arrays comprises four or more individual feeds arranged substantially on a periodic feed lattice.
- 29. A phased reflector array antenna according to claim 28, wherein the periodic feed lattice is a periodic hexagonal feed lattice.
- 30. A phased reflector array antenna according to claim 27, wherein each feed array is disposed at a corresponding individual reflector focal point.
- 31. A phased reflector array antenna according to claim 27, wherein the periodic reflector lattice is a periodic hexagonal reflector lattice.
- 32. A phased reflector array according to claim 26, wherein the plurality of reflector antennas comprises four or more individual reflectors arranged on an aperiodic lattice.
- 33. A phased reflector array antenna according to claim 26, further comprising:phase and amplitude control means coupled to each individual reflector for steering the individual reflectors.
- 34. A phased reflector array antenna according to claim 26, further comprising switching means coupled to the feed arrays for selectively activating and deactivating feeds in the feed arrays.
- 35. An antenna pattern for a phased reflector array antenna, the antenna pattern comprising a reflector array pattern in product with array-fed reflector patterns, the reflector array pattern generated by a lattice of four or more reflector antennas, having a polygonal geometric peripheral shape, and the array-fed reflector patterns generated by selectively actuable array feeds above the reflector antennas.
- 36. An antenna pattern according to claim 35, wherein the reflector array pattern is a reflector array pattern corresponding to a lattice of reflector antennas disposed adjacent to one another.
- 37. An antenna pattern according to claim 35, wherein at lest one of the array-fed reflector patterns is an array feed pattern corresponding to an array feed comprising individual feeds arranged in a lattice.
- 38. An antenna pattern according to claim 35, wherein the reflector array pattern is a reflector array pattern corresponding to a substantially hexagonal lattice of reflector antennas.
- 39. An antenna pattern according to claim 35, wherein at least one of the array-fed reflector patterns is an array-fed reflector pattern corresponding to a feed array illuminating a reflector and comprising individual feeds arranged in a hexagonal lattice.
- 40. A phased reflector array antenna comprising:a plurality of reflector antennas pointed toward a common direction each comprising a reflector and a feed array, the feed array disposed above the reflector, the reflector comprising a reflector surface having a periphery in the shape of a polygon and including rigid support posts located at corner points of the periphery, and wherein each reflector antenna is disposed adjacent to at least one other reflector antenna and wherein a portion of the periphery is shared with at least one other adjacent reflector antenna in the plurality of reflector antennas to form a phased array antenna using the plurality of reflector antennas as phased array antenna elements to form a communication beam.
- 41. The phased reflector array antenna of claim 40 wherein the individual reflector antennas have a hexagonal periphery.
- 42. The phased reflector array antenna of claim 41, further comprising a hexagonal support web around the hexagonal periphery of the reflector surface.
- 43. The phased reflector array antenna of claim 41 further comprising a hexagonal support web around the hexagonal periphery of the feed support plane surface.
- 44. The phased reflector array antenna of claim 40, wherein the reflector surface is an elastic RF material reflector surface.
Parent Case Info
This application claims priority on provisional Application No. 60/177,282 filed on Jan. 21, 2000, the entire contents of which are hereby incorporated by reference.
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Provisional Applications (1)
|
Number |
Date |
Country |
|
60/177282 |
Jan 2000 |
US |