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US20140376450A1 - Incremental gateway deployment in a hub-spoke satellite communication system using static spot beams - Google Patents

Incremental gateway deployment in a hub-spoke satellite communication system using static spot beams
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Publication number
US20140376450A1
US20140376450A1US14/164,502US201414164502AUS2014376450A1US 20140376450 A1US20140376450 A1US 20140376450A1US 201414164502 AUS201414164502 AUS 201414164502AUS 2014376450 A1US2014376450 A1US 2014376450A1
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gateway
switch
receivers
switching
link signals
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Abandoned
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US14/164,502
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Mark J. Miller
Charles N. Pateros
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Viasat Inc
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Viasat Inc
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Priority to US14/164,502priorityCriticalpatent/US20140376450A1/en
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Abandonedlegal-statusCriticalCurrent

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Abstract

A method for communicating includes providing a hub-spoke satellite comprising receivers, transmitters, transmit switches, and a gateway switch structure. Prior to a time T, each of at least P receivers are used to receive one of at least P signals from P gateway terminals. During one frame, the gateway switch structure is used to switch the at least P signals to the plurality of transmit switches. Each of the at least P signals are switched into fixed location beams. After time T, each of at least Q receivers are used to receive a different one of at least Q signals from Q gateway terminals. During one frame, the gateway switch structure is used to switch the at least Q signals to the plurality of transmit switches. Each of the at least Q signals are switched into fixed location beams. Q and P are non-zero positive integers and Q>P.

Description

Claims (32)

14. A method for communicating using a hub-spoke satellite having a forward link and return link capability comprising:
providing the hub-spoke satellite, the hub-spoke satellite comprising a plurality of receivers having inputs and outputs, a plurality of transmitters having inputs and outputs, the inputs of the plurality of transmitters coupled to the outputs of the plurality of receivers, a plurality of transmit switches coupled to the outputs of the plurality of transmitters, a plurality of receive switches coupled to the inputs of the plurality of receivers, and a gateway switch structure coupled to one of: a) the inputs of the plurality of receivers and the outputs of the plurality of transmitters, and b) the outputs of the plurality of receivers and the inputs of the plurality of transmitters;
using each transmit switch in the plurality of transmit switches to sequentially switch a forward link signal into multiple fixed location beams according to a beam group transmit switching pattern;
using each receive switch in the plurality of receive switches to sequentially switch return link signals from fixed location beams into a receiver according to a beam group receive switching pattern;
prior to a time T, using each of the at least P receivers in the plurality of receivers to receive a different one of at least P forward link signals from P gateway terminals, and in the duration of one frame, using the gateway switch structure to sequentially switch the at least P forward link signals from the P gateway terminals, in order to provide the at least P forward link signals to the plurality of transmit switches, according to a first gateway switching pattern, and sequentially switching each of the at least P forward link signals into fixed location beams according to a first beam group transmit switching pattern;
prior to time T, sequentially switching the return link signals from multiple fixed location beams into the plurality of receivers according to a first beam group receive switching pattern, and in the duration of one frame, using the gateway switch structure to sequentially switch the return link signals to at least P transmitters in the plurality of transmitters according to the first gateway switching pattern, and using each of the at least P transmitters to transmit a different one of the return link signals to one of the P gateway terminals;
after time T, using each of at least Q receivers in the plurality of receivers to receive a different one of at least Q forward link signals from Q gateway terminals, and in the duration of one frame, using the gateway switch structure to sequentially switch the at least Q forward link signals from the Q gateway terminals, in order to provide the at least Q forward link signals to the plurality of transmit switches, according to a second gateway switching pattern, and sequentially switching each of the at least Q forward link signals into fixed location beams according to a second beam group transmit switching pattern;
after time T, sequentially switching the return link signals from multiple fixed location beams into the plurality of receivers according to a second beam group receive switching pattern, and in the duration of one frame, using the gateway switch structure to sequentially switch the return link signals to at least Q transmitters in the plurality of transmitters according to the second gateway switching pattern, and using each of the at least Q transmitters to transmit a different one of the return link signals to one of the Q gateway terminals;
wherein P and Q are both non-zero, positive integers, and Q>P; and
wherein the first and second gateway switching patterns are different.
28. A satellite communications system having a forward link and return link capacity comprising:
a plurality of gateway terminals;
a plurality of user terminals;
a hub-spoke satellite for providing communications between the gateway terminals and the user terminals, the hub-spoke satellite comprising a plurality of receivers having inputs and outputs, a plurality of transmitters having inputs and outputs, the inputs of the plurality of transmitters coupled to the outputs of the plurality of receivers, a plurality of transmit switches coupled to the outputs of the plurality of transmitters, a plurality of receive switches coupled to the inputs of the plurality of receivers, and a gateway switch structure coupled to one of: (a) the inputs of the plurality of receivers and the outputs of the plurality of transmitters, and (b) the outputs of the plurality receivers and the inputs of the plurality of transmitters;
wherein each transmit switch in the plurality of transmit switches is configured to sequentially switch a forward link signal into multiple fixed location beams according to a beam group transmit switching pattern;
wherein each receive switch in the plurality of receive switches is configured to sequentially switch return link signals from fixed location beams into a receiver according to a beam group receive switching pattern;
wherein prior to a time T, at least P receivers in the plurality of receivers are each configured to receive a different one of at least P forward link signals from P gateway terminals, and in the duration of one frame, the gateway switch structure is configured to sequentially switch the at least P forward link signals from the P gateway terminals, in order to provide the at least P forward link signals to the plurality of transmit switches, according to a first gateway switching pattern, and each of the at least P forward link signals is sequentially switched into fixed location beams according to a first beam group transmit switching pattern;
wherein prior to time T, the return link signals from multiple fixed location beams are sequentially switched into the plurality of receivers according to a first beam group receive switching pattern, and in the duration of one frame, the gateway switch structure is configured to sequentially switch the return link signals to at least P transmitters in the plurality of transmitters according to the first gateway switching pattern, and the at least P transmitters are each configured to transmit a different one of the return link signals to one of the P gateway terminals;
wherein after time T, at least Q receivers in the plurality of receivers are each configured to receive a different one of at least Q forward link signals from Q gateway terminals, and in the duration of one frame, the gateway switch structure is configured to sequentially switch the at least Q forward link signals from the Q gateway terminals, in order to provide the at least Q forward link signals to the plurality of transmit switches, according to a second gateway switching pattern, and each of the at least Q forward link signals is sequentially switched into fixed location beams according to a second beam group transmit switching pattern;
wherein after time T, the return link signals from multiple fixed location beams are sequentially switched into the plurality of receivers according to a second beam group receive switching pattern, and in the duration of one frame, the gateway switch structure is configured to sequentially switch the return link signals to at least Q transmitters in the plurality of transmitters according to the second gateway switching pattern, and the at least Q transmitters are each configured to transmit a different one of the return link signals to one of the Q gateway terminals;
wherein P and Q are both non-zero, positive integers, and Q>P; and
wherein the first and second gateway switching patterns are different.
42. A hub-spoke satellite having a forward link and return link capacity comprising:
a plurality of receivers having inputs and outputs;
a plurality of transmitters having inputs and outputs, the inputs of the plurality of transmitters coupled to the outputs of the plurality of receivers;
a plurality of transmit switches coupled to the outputs of the plurality of transmitters;
a plurality of receive switches coupled to the inputs of the plurality of receivers;
a gateway switch structure coupled to one of: (a) the inputs of the plurality of receivers and the outputs of the plurality of transmitters, and (b) the outputs of the plurality receivers and the inputs of the plurality of transmitters;
wherein each transmit switch in the plurality of transmit switches is configured to sequentially switch a forward link signal into multiple fixed location beams according to a beam group transmit switching pattern;
wherein each receive switch in the plurality of receive switches is configured to sequentially switch return link signals from fixed location beams into a receiver according to a beam group receive switching pattern;
wherein prior to a time T, at least P receivers in the plurality of receivers are each configured to receive a different one of at least P forward link signals from P gateway terminals, and in the duration of one frame, the gateway switch structure is configured to sequentially switch the at least P forward link signals from the P gateway terminals, in order to provide the at least P forward link signals to the plurality of transmit switches, according to a first gateway switching pattern, and each of the at least P forward link signals is sequentially switched into fixed location beams according to a first beam group transmit switching pattern;
wherein prior to time T, the return link signals from multiple fixed location beams are sequentially switched into the plurality of receivers according to a first beam group receive switching pattern, and in the duration of one frame, the gateway switch structure is configured to sequentially switch the return link signals to at least P transmitters in the plurality of transmitters according to the first gateway switching pattern, and the at least P transmitters are each configured to transmit a different one of the return link signals to one of the P gateway terminals;
wherein after time T, at least Q receivers in the plurality of receivers are each configured to receive a different one of at least Q forward link signals from Q gateway terminals, and in the duration of one frame, the gateway switch structure is configured to sequentially switch the at least Q forward link signals from the Q gateway terminals, in order to provide the at least Q forward link signals to the plurality of transmit switches, according to a second gateway switching pattern, and each of the at least Q forward link signals is sequentially switched into fixed location beams according to a second beam group transmit switching pattern;
wherein after time T, the return link signals from multiple fixed location beams are sequentially switched into the plurality of receivers according to a second beam group receive switching pattern, and in the duration of one frame, the gateway switch structure is configured to sequentially switch the return link signals to at least Q transmitters in the plurality of transmitters according to the second gateway switching pattern, and the at least Q transmitters are each configured to transmit a different one of the return link signals to one of the Q gateway terminals;
wherein P and Q are both non-zero, positive integers, and Q>P; and
wherein the first and second gateway switching patterns are different.
56. A hub-spoke satellite having a forward link and return link capability comprising:
prior to a time T:
means for receiving at least P forward link signals from P gateway terminals;
means for sequentially switching the at least P forward link signals from the P gateway terminals in the duration of one frame, in order to provide the at least P forward link signals to a plurality of transmit switches, according to a first gateway switching pattern;
means for sequentially switching each of the at least P forward link signals into fixed location beams according to a first beam group transmit switching pattern;
means for sequentially switching return link signals from multiple fixed location beams into a plurality of receivers according to a first beam group receive switching pattern;
means for sequentially switching the return link signals to at least P transmitters in the duration of one frame, according to the first gateway switching pattern;
means for transmitting the return link signals to one of the P gateway terminals;
after time T:
means for receiving at least Q forward link signals from Q gateway terminals;
means for sequentially switching the at least Q forward link signals from the Q gateway terminals in the duration of one frame, in order to provide the at least Q forward link signals to the plurality of transmit switches, according to a second gateway switching pattern;
means for sequentially switching each of the at least Q forward link signals into fixed location beams according to a second beam group transmit switching pattern;
means for sequentially switching the return link signals from multiple fixed location beams into the plurality of receivers according to a second beam group receive switching pattern;
means for sequentially switching the return link signals to at least Q transmitters in the duration of one frame, according to a second gateway switching pattern;
means for transmitting the return link signals to one of the Q gateway terminals;
wherein P and Q are both non-zero, positive integers, and Q>P; and
wherein the first and second gateway switching patterns are different.
US14/164,5022011-07-292014-01-27Incremental gateway deployment in a hub-spoke satellite communication system using static spot beamsAbandonedUS20140376450A1 (en)

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US201161513317P2011-07-292011-07-29
US201161568578P2011-12-082011-12-08
US201161568569P2011-12-082011-12-08
US201261591810P2012-01-272012-01-27
PCT/US2012/048695WO2013019673A1 (en)2011-07-292012-07-27Incremental gateway deployment in a hub-spoke satellite communication system using static spot beams
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US13/560,825ActiveUS8340016B1 (en)2011-07-292012-07-27Flexible forward and return capacity allocation in a hub-spoke satellite communication system
US14/164,502AbandonedUS20140376450A1 (en)2011-07-292014-01-27Incremental gateway deployment in a hub-spoke satellite communication system using static spot beams
US14/166,582AbandonedUS20150009891A1 (en)2011-07-292014-01-28Payload for a multibeam communication satellite of a hub-spoke system with receive and transmit switching pattern synchronized over a frame for flexible forward and return capacity allocation

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US20150009891A1 (en)2015-01-08
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US8340015B1 (en)2012-12-25
WO2013019673A1 (en)2013-02-07
EP2737642B1 (en)2015-08-19
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EP2737642A1 (en)2014-06-04
AU2012290310B2 (en)2014-04-24

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