Claims
- 1. A method of data transfer comprising the steps of:
(a) establishing multiple dynamic wireless linkages between a communications network based on an Internet protocol and a user terminal via a plurality of geo-stationary satellites; and (b) transferring datagrams conforming to the Internet protocol between the user terminal and the communications network over the multiple wireless linkages.
- 2. The method of claim 1 wherein the communications network is the global Internet.
- 3. The method of claim 1 wherein the multiple wireless linkages are coupled to the communications network by RF communications base terminals connected to Internet nodes.
- 4. The method of claim 1 wherein the datagrams comprise data frames conforming to the Internet protocol.
- 5. The method of claim 1 wherein the user terminal assembles datagrams from data frames received as input from the communications network.
- 6. The method of claim 1 wherein the user terminal fragments datagrams to generate data frames generated as output to the communications network.
- 7. A communications system comprising:
a plurality of geo-stationary satellites; a communications network based on an Internet protocol; a plurality of Internet nodes coupled to the communications network; a plurality of communications base terminals coupled to the Internet nodes and to the plurality of geostationary satellites; and a user terminal coupled to the plurality of geostationary satellites.
- 8. The communications system of claim 7 wherein the user terminal comprises:
a multiple beam antenna for receiving and transmitting signals between the user terminal and the plurality of geo-stationary satellites; a plurality of amplifiers coupled to the multiple beam antenna; a plurality of bandpass filters coupled to the plurality of amplifiers; a modem coupled to the plurality of bandpass filters; a router & hub coupled to the modem; a transport layer coupled to the router & hub; and an estimation processor coupled to the hub & router.
- 9. The communications system of claim 8 wherein the estimation processor comprises:
a plurality of relative position vectors; a user state vector; a plurality of satellite state vectors; and at least one estimation algorithm module coupled to the plurality of relative position vectors, the user state vector, and the plurality of satellite state vectors.
- 10. The communications system of claim 8 wherein the estimation processor is coupled to an external calibration information module.
- 11. The communications system of claim 8 wherein the estimation processor outputs the relative position vectors to the router & hub and to the multiple beam antenna.
- 12. The communications system of claim 8 wherein the multiple beam antenna comprises a reflector and a plurality of feedhorns coupled to the reflector.
- 13. The communications system of claim 12 wherein the reflector is a parabolic reflector.
- 14. The communications system of claim 12 wherein each of the plurality of feedhorns is located on a focal plane of the reflector.
- 15. The communications system of claim 12 comprising a tracking mechanism coupled to the multiple beam antenna.
- 16. The communications system of claim 15 wherein the tracking mechanism adjusts a position of each of the plurality of feedhorns independently.
- 17. The communications system of claim 15 wherein the tracking mechanism adjusts a position of the reflector to optimize overall data throughput.
- 18. A user terminal comprising:
a multiple beam antenna; a plurality of amplifiers coupled to the multiple beam antenna; a plurality of bandpass filters coupled to the plurality of amplifiers; a modem coupled to the plurality of bandpass filters; a router & hub coupled to the modem; a transport layer coupled to the router & hub; and an estimation processor coupled to the router & hub.
- 19. The user terminal of claim 18 wherein the estimation processor comprises:
a plurality of relative position vectors; a user state vector; a plurality of satellite state vectors; and at least one estimation algorithm module coupled to the plurality of relative position vectors, the user state vector, and the plurality of satellite state vectors.
- 20. The user terminal of claim 18 wherein the estimation processor is coupled to an external calibration information module.
- 21. The user terminal of claim 18 wherein the estimation processor outputs the relative position vectors to the router & hub and to the multiple beam antenna.
- 22. The user terminal of claim 18 wherein the multiple beam antenna comprises a reflector and a plurality of feedhorns coupled to the reflector.
- 23. The user terminal of claim 22 wherein the reflector is a parabolic reflector.
- 24. The user terminal of claim 22 wherein each of the plurality of feedhorns is located on a focal plane of the reflector.
- 25. The user terminal of claim 22 comprising a tracking mechanism coupled to the multiple beam antenna.
- 26. The user terminal of claim 25 wherein the tracking mechanism adjusts a position of each of the plurality of feedhorns independently.
- 27. The user terminal of claim 25 wherein the tracking mechanism adjusts a position of the reflector to optimize overall data throughput.
Parent Case Info
[0001] This application claims the benefit under 35 U.S.C 119(e) of United States provisional application with Ser, No. 60/266,685 (PD-20027) filed on Feb. 5, 2001, entitled MULTIPLE LINK FIXED TERMINAL FOR GEOSTATINARY COMMUNICATIONS USERS
Provisional Applications (1)
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Number |
Date |
Country |
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60266685 |
Feb 2001 |
US |