Claims
- 1. A method of automatically positioning an antenna on three mutually exclusive orthogonal planes, comprising the steps of:determining initial azimuth, elevation, and polarization positions of said antennae; determining an initial positioning level for skew and a rough azimuth angle and elevation; setting a polarization value to 0; and performing a search of azimuth, elevation, and polarization of a satellite by moving said antennae on said three mutually exclusive orthogonal planes.
- 2. A method as recited in claim 1, comprising the further step of checking to ensure that a control cable connector is connected.
- 3. A method as recited in claim 1, comprising the further step of providing a failure indication when said satellite is not found.
- 4. A method as recited in claim 3, comprising the further step of stopping movement of said antennae when said failure indication is provided.
- 5. A method as recited in claim 3, comprising the further step of repeating said step of determining said initial azimuth, elevation, and polarization positions of said antennae, and repeating said method when said failure indication is provided.
- 6. A method as recited in claim 1, comprising the further step of providing a detection indication when said satellite is found.
- 7. A method as recited in claim 6, comprising the further step of stopping movement of said antennae when said detection indication is provided.
- 8. A method as recited in claim 7, comprising the further step of locking said antennae after said satellite is found so that said antennae is aligned with said satellite.
- 9. A method as recited in claim 8, comprising the further step of disconnecting a control cable connector.
- 10. A method as recited in claim 1, wherein said step of performing a search comprises the further steps of:performing a course search; and performing a fine search.
- 11. A method as recited in claim 10, wherein said course search comprises:scanning to determine azimuth, elevation, and polarization, a first course search.
- 12. A method as recited in claim 10, wherein said fine search is performed after a successful course search.
- 13. A method as recited in claim 10, wherein said coarse search comprises moving said antennae a predetermined number of coarse degrees and measuring any received signal.
- 14. A method as recited in claim 13, wherein said coarse search further comprises comparing the received signal to a threshold, and setting said azimuth, elevation and polarization when said signal is greater than said threshold.
- 15. A method as recited in claim 14, wherein when the signal is not greater than said threshold, said azimuth is changed.
- 16. A method as recited in claim 15, wherein when said azimuth is out of range, said elevation is moved a predetermined amount.
- 17. A method as recited in claim 16, wherein when said elevation is out of range and no the satellite was not found during the course search, said polarization is turned 90 degrees, and said coarse search is repeated.
- 18. A method as recited in claim 17, wherein when said polarization has previously been modified, a failure indication is provided.
- 19. A method as recited in claim 14, wherein when the signal is not greater than said threshold, said elevation is changed.
- 20. A method as recited in claim 19, wherein when said elevation is out of range, said azimuth is moved a predetermined amount.
- 21. A method as recited in claim 20, wherein when said azimuth is out of range and no the satellite was not found during the course search, said polarization is turned 90 degrees, and said coarse search is repeated.
- 22. A method as recited in claim 12, wherein said fine search comprises the steps of:moving said azimuth; and determining if a gradient is negative and if so switching a direction of movement of said antennae.
- 23. A method as recited in claim 22, wherein said step of moving said azimuth continues until a local maximum azimuth is acquired.
- 24. A method as recited in claim 23, wherein said fine search comprises the further steps of:calculating a threshold for symmetrical search when said gradient is negative a second time; and stopping movement of said antennae when a feedback signal is just above a predetermined level in order to maintain satellite acquisition.
- 25. A method as recited in claim 24, wherein said fine search comprises the further step of finding a center of said elevation readings using a symmetrical scan.
- 26. A method as recited in claim 25, wherein said step of finding the center of said elevation readings comprises:scanning an elevation axis at a fixed azimuth until a negative gradient is found and a feedback signal is less than a predetermined threshold; capturing points of pre-calculated thresholds; repeating said scanning and capturing steps in opposite directions to compensate for delays; and calculating the center using said thresholds.
- 27. A method as recited in claim 24, wherein said fine search comprises the further step of finding a center of said azimuth readings using a symmetrical scan.
- 28. A method as recited in claim 27, wherein said step of finding the center of said azimuth readings comprises:scanning an azimuth axis at a fixed elevation until a negative gradient is found and a feedback signal is less than a predetermined threshold; capturing points of pre-calculated thresholds; repeating said scanning and capturing steps in opposite directions to compensate for delays; and calculating the center using said thresholds.
- 29. A method as recited in claim 28, wherein said fine search comprises the further step of finding a center of said elevation readings using a symmetrical scan.
- 30. A method as recited in claim 29, wherein said step of finding the center of said elevation readings comprises:scanning an elevation axis at a fixed azimuth until a negative gradient is found and a feedback signal is less than a predetermined threshold; capturing points of pre-calculated thresholds; repeating said scanning and capturing steps in opposite directions to compensate for delays; and calculating the center using said thresholds.
- 31. A method as recited in claim 30, wherein said fine coarse search is continued until a predetermined set of convergence criteria are met indicating that said antennae is aligned.
- 32. A system for automatically positioning an antenna on three mutually exclusive orthogonal planes, comprising:a motor for moving said antennae in around an azimuth axis, an elevation axis and a polarization axis; and a microprocessor for controlling movement of said motor and receiving feedback relating to received signals, said microprocessor using a control algorithm to control positioning of said antennae to align said antennae with a satellite.
- 33. A system for automatically positioning an antenna on three mutually exclusive orthogonal planes, comprising:an indoor unit including a satellite receiver, a telemetric transmission, a drive motor and an electronic search device; and an outdoor unit including a supervisory unit, a motor, and a control unit, wherein said outdoor unit searches in the three orthogonal planes to position the antenna is accordance with messages received from said telemetric transmission from said indoor unit.
Parent Case Info
This application claims priority to provisional U.S. Application Ser. No. 60/246,572 filed Nov. 8, 2000, herein incorporated by reference.
US Referenced Citations (6)
Foreign Referenced Citations (3)
Number |
Date |
Country |
0 579 407 |
Jan 1994 |
EP |
2 196 183 |
Apr 1988 |
GB |
WO 9003667 |
Apr 1990 |
WO |
Non-Patent Literature Citations (1)
Entry |
F. Rahman, Boresight Pointing Calibration of Communication Satellite Through In-Orbit Antenna Tests, IEEE Transactions on Instrumentation and Measurement, vol. 42, No. 2, Apr. 1993, New York, pp. 553-556. |
Provisional Applications (1)
|
Number |
Date |
Country |
|
60/246572 |
Nov 2000 |
US |