Claims
- 1. A method of communicating via satellite in a system comprising a satellite having a first type antenna capable of transmission of communication signals to a region on the earth's surface and a plurality of earth stations disposed in said region, each earth station having a second type antenna capable of reception of said signals, said method comprising;
transmitting from said first type antenna multiple sub-beams within bandwidth allocated to a basic spot beam to said plurality of antennas in said region.
- 2. A method as claimed in 1, where said sub-beams are transmitted within the frequency range of said basic spot beam.
- 3. A method as claimed in 1, where said sub-beams are transmitted in a plurality to form a cluster, where said cluster has the same coverage area in said region as said basic spot beams.
- 4. A method as claimed in 1, where said sub-beams are transmitted by use of a phased array antenna.
- 5. A method as claimed in 1, wherein the number of said sub-beams N are defined by the mathematical equation N=i2+j2+ij, where i and j are non-negative integers.
- 6. A method as claimed in 1, wherein said sub-beams require less peak gain than said basic spot beam.
- 7. A method as claimed in 3, where said clusters are transmitted so as to form a coverage area, said coverage area is a contiguous area defined by a matrix, where each facet of said matrix has interlocking borders, said borders defined as the contours of said spot beams.
- 8. A method as claimed in 6, where each sub-beam is defined by a contour level, said contour level determined by a required edge gain.
- 9. A method as claimed in 8, wherein the gain relationship between said basic spot beams and said sub-beams can be defined by the equation Gb−xb=Gs−xs where Gb and Gs refer to said peak gain values of said basic spot beams and said sub-beams respectively, and xb and xs denote the contour levels for which each beam is defined.
- 10. A method as claimed in 9, wherein the peak gain of said antenna can be related to its half power beam width (hpbw), θ3 by an the equation
- 11. A method as claimed in 10, wherein the beamwidth of a phased array at an arbitrary contour level to its hpbw is determined by the equation θx=θ3*0.59*x04806, where the units of the beamwidth are in degrees.
- 12. A method as claimed in 9, wherein the contour levels of said basic and said sub-beams can be related to their beamwidths by the equation
- 13. A method as claimed in 4, wherein said transmission originates from a low or medium earth orbiting system.
- 14. A method as claimed in 1, wherein said basic beam has 3 or more dB of gain drop.
- 15. A method as claimed in 1, wherein said sub-beam has less than 1 dB of gain drop.
- 16. A method as claimed in 1, wherein said sub-beams number 4 or more.
- 17. A communications system comprising a satellite having a first type antenna capable of transmission of communication signals to a region on the earth's surface and a plurality of earth stations disposed in said region, each earth station having a second type antenna capable of reception of said signals;
a phased array antenna; a digital beam former that produces multiple sub-beams within the parameters of a basic spot beam; and an aperture sized to produce sub-beams with a gain drop of less than 3 dB.
- 18. A system as claimed in 17, where said antenna and digital beam former are installed on a satellite.
- 19. A system as claimed in 18, where said satellite is in low or medium Earth orbit.
- 20. A satellite antenna comprising;
a phased array antenna; a digital beam former operatively connected to said phased array and adapted to produce multiple sub-beams, each said sub-beam having a gain that at its peak is approximately equal to an edge gain.
Parent Case Info
[0001] This application claims the benefit of U.S. Provisional Application No. 60/218,214, filed Jul. 14, 2000, under 35 U.S.C. § 119(e).
Provisional Applications (1)
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Number |
Date |
Country |
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60218214 |
Jul 2000 |
US |