IP Library Granted Patent US 10,347,987
Granted Patent B2
US 10,347,987 · App. 15/173,038 · Granted Jul 9, 2019

Satellite system having terminals in hopping beams communicating with more than one gateway

Inventors: William Hreha (San Jose, CA); Anne Elizabeth Wharton (Boulder Creek, CA); David Linford Foulke (Mountain View, CA)
Assignee: Space Systems/Loral, LLC
H01Q3/2682H04B7/043H04B7/1851H04B7/18534H04J1/05H04W56/0015H04B7/18547H04B7/18595H04B7/19
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Quick Facts
Patent No.
US 10,347,987
App. No.
15/173,038
Granted
Jul 9, 2019
Kind
B2
Abstract

A satellite communication system includes a satellite configured to provide a first plurality of spot beams adapted for communication with subscriber terminals using time domain beam hopping and a second plurality of spot beams adapted for communication with gateways. The satellite includes a spectrum routing network that is configured to time multiplex spot beams of the second plurality of spot beams with spot beams of the first plurality of spot beams so that a spot beam that is implementing beam hopping for communication to subscriber terminals communicates with different feeder beams (and, therefore, different gateways) at different times during a hopping period.

Claims (74)

1. A satellite communication system, comprising:

a satellite configured to provide a first plurality of spot beams adapted for communication with subscriber terminals using time domain beam hopping, the satellite configured to provide a second plurality of spot beams adapted for communication with gateways, the time domain beam hopping including breaking up a set of consecutive messages received from a gateway into plural subsets of the messages, a first of the subsets being transmitted by way of one of the first plurality of the spot beams and a second of the subsets being transmitted by way of another of the first plurality of the spot beams, the satellite includes a spectrum routing network that is configured to time multiplex communications of spot beams of the second plurality of spot beams into spot beams of the first plurality of spot beams.

2. The satellite communication system of claim 1 , wherein:

said time domain beam hopping is specified to occur in accordance with a currently selected one of a plurality of pre-specified time domain beam hopping plans; and

the spectrum routing network includes a digital channelizer that is programmable so as to time multiplex the communications of the spot beams of the second plurality of spot beams in accordance with the currently specified one of the plurality of pre-specified time domain beam hopping plans.

3. The satellite communication system of claim 1 , wherein:

the spectrum routing network includes a digital channelizer;

the first plurality of spot beams are divided into mutually exclusive hopping groups, each hopping group consisting of a respective set of plural ones of the first plurality of spot beams wherein not all the respective plural spot beams of each hopping group are simultaneously used;

the satellite further includes an antenna system and a selection matrix in communication with the digital channelizer and the antenna system;

the antenna system provides the first plurality of spot beams and the second plurality of spot beams;

the digital channelizer routes communication signals between the first plurality of spot beams and the second plurality of spot beams; and

the selection matrix switches communication throughput among spot beams in a same hopping group such that not all the respective plural spot beams of that same hopping group are simultaneously used.

4. The satellite communication system of claim 1 , wherein:

said time domain beam hopping is specified to occur in accordance with a time domain beam hopping plan having plural hopping periods with each hopping period having respective epochs;

the satellite is configured to switch communications throughput among spot beams output by the satellite at intervals of respective epochs of each of its hopping periods according to a specified time domain beam hopping plan; and

the spectrum routing network is configured to time multiplex the communications of spot beams of the second plurality of spot beams into spot beams of the first plurality of spot beams during a respective hopping period such that a particular beam of the first plurality of beams receives communication bandwidth at multiple epochs during the hopping period, the satellite is configured to route communication between different beams of the second plurality of beams and the particular beam at different epochs of multiple epochs during the hopping period.

5. The satellite communication system of claim 4 , wherein:

the satellite is configured to route communication between different beams of the second plurality of beams and the particular beam at different epochs of multiple epochs during the hopping period while the particular beam remains over a particular subscriber terminal location.

6. The satellite communication system of claim 1 , wherein:

said time domain beam hopping is specified to occur in accordance with a time domain beam hopping plan having plural hopping periods with each hopping period having respective epochs;

the spectrum routing network is configured to time multiplex the communications of spot beams of the second plurality of spot beams into spot beams of the first plurality of spot beams by providing communication between a particular spot beam of the first plurality of spot beams and a first spot beam of the second plurality of spot beams during a first set of epochs while the particular spot beam is over a location on a planet surface and providing communication between the particular spot beam and a second spot beam of the second plurality of spot beams during a second set of one or more epochs while the particular spot beam remains over the location on the planet surface.

7. The satellite communication system of claim 6 , wherein:

the second set of one or more epochs are interleaved with the first set of epochs.

8. The satellite communication system of claim 1 , wherein:

the spectrum routing network is configured to time multiplex the communications of spot beams of the second plurality of spot beams into spot beams of the first plurality of spot beams while a particular spot beam of the first set of spot beams remains over a particular location, wherein the particular spot beam of the first set of spot beams is one that constantly moves relative to the planet surface.

9. The satellite communication system of claim 1 , wherein:

said time domain beam hopping is specified to occur in accordance with a time domain beam hopping plan having plural hopping periods with each hopping period having respective epochs;

the satellite is configured to switch communications throughput among spot beams output by the satellite at intervals of respective epochs of each of its hopping periods according to a specified time domain beam hopping plan;

the satellite is configured to change configuration of the spectrum routing network during implementation of given time domain beam hopping plan and while in orbit as the satellite moves in relation to a coverage area; and

the satellite is configured to change in orbit how the communications of spot beams of the second plurality of spot beams are time multiplexed into spot beams of the first plurality of spot beams.

10. The satellite communication system of claim 1 , wherein:

said time domain beam hopping is specified to occur in accordance with a time domain beam hopping plan having plural hopping periods with each hopping period having respective epochs;

the satellite is configured to switch throughput among spot beams at intervals of an epoch over a hopping period according to a currently specified hopping plan;

each epoch includes an active time, a late arrival window, a payload reconfigure time and an early arrival window;

during the active time of a current epoch, the satellite is configured to transmit data for the current epoch;

during the late arrival time, the satellite is configured to transmit data that arrived late for the current epoch;

during the payload reconfigure time, the satellite is configured to change routing paths in the spectrum routing network for a next epoch; and

during the early arrival window, the satellite is configured to transmit data that arrived early for the next epoch.

11. The satellite communication system of claim 1 , wherein:

the satellite is a non-geostationary satellite.

12. The satellite communication system of claim 1 , further comprising:

additional satellites that together with the satellite form a constellation of non-geostationary satellites that each are configured to provide a separate first plurality of spot beams adapted for communication with subscriber terminals using time domain beam hopping and provide a separate second plurality of spot beams adapted for communication with gateways, the satellites each include a respective spectrum routing network that is configured to time multiplex communications of spot beams of the respective second plurality of spot beams into spot beams of the respective first plurality of spot beams.

13. A satellite communication system according to claim 12 , wherein:

each satellite of the constellation has a same beam map; and

each satellite of the constellation is configured to travel along a same orbital path.

14. A method of operating a satellite communication system, comprising:

providing a first plurality of spot beams from a non-geostationary satellite in order to communicate with subscriber terminals as the satellite moves relative to and over a planet surface;

providing a second plurality of spot beams from the non-geostationary satellite in order to communicate with gateways as the satellite moves relative to and over the planet surface;

communicating with the subscriber terminals by use of time domain beam hopping in which a set of consecutive messages received from one of the gateways is broken up into plural subsets of the messages, a first of the subsets being transmitted by way of one of the first plurality of the spot beams and a second of the subsets being transmitted by way of another of the first plurality of the spot beams;

providing signal communication between a particular spot beam of the first plurality of spot beams and a first spot beam of the second plurality of spot beams during a first set of epochs while the particular spot beam is over a location on the planet surface; and

providing signal communication between the particular spot beam and a second spot beam of the second plurality of spot beams during a second set of one or more epochs while the particular spot beam covers the location on the planet surface.

15. The method of claim 14 , wherein:

the first set of epochs is interleaved with the second set of one or more epochs.

16. The method of claim 14 , wherein:

the communicating by use of time domain beam hopping for the first plurality of spot beams includes moving communication throughput between spot beams of the first plurality of spot beams at intervals of an epoch over a hopping period according to a hopping plan; and

the method further comprising changing configuration of the non-geostationary satellite between providing communication between the particular spot beam and the first spot beam and providing communication between the particular spot beam and the second spot beam during the hopping plan in orbit while the satellite moves in relation to the planet surface.

17. The method of claim 14 , wherein:

the communicating by use of time domain beam hopping for the first plurality of spot beams includes moving communication throughput between spot beams of the first plurality of spot beams at intervals of an epoch over a hopping period according to a hopping plan;

each epoch includes an active time, a late arrival window, a payload reconfigure time and an early arrival window;

during the active time of a current epoch, the satellite is transmitting data for the current epoch;

during the late arrival time, the satellite is transmitting data that arrived late for the current epoch;

during the payload reconfigure time, the satellite is configuring its routing paths for a next epoch; and

during the early arrival window, the satellite is transmitting data that arrived early for the next epoch.

18. The method of claim 14 , wherein:

the providing a first plurality of spot beams, communicating by use of time domain beam hopping for the first plurality of spot beams, providing a second plurality of spot beams, providing communication between a particular spot beam of the first plurality of spot beams and a first spot beam and providing communication between the particular spot beam and a second spot beam are performed separately and concurrently by multiple satellites using a same beams projecting map and traveling along a same orbital path.

19. A satellite communication system, comprising:

a non-geostationary satellite configured to provide a first plurality of beams adapted for communication with subscriber terminals and a second plurality of beams adapted for communication with gateways, the satellite is configured to perform time domain beam hopping for communications of the first plurality of beams over a hopping period of a specified time domain beam hopping plan, the time domain beam hopping including breaking up a set of consecutive messages received from one of the gateways into plural subsets of the messages, a first of the subsets being transmitted by way of one of the first plurality of the spot beams and a second of the subsets being transmitted by way of another of the first plurality of the spot beams, the specified time domain beam hopping plan being such that a particular beam of the first plurality of beams receives communication bandwidth at multiple epochs during the hopping period, the satellite is configured to further route communications through different beams of the second plurality of beams as part of communicating by way of the particular beam at different epochs of multiple epochs during the hopping period.

20. The satellite communication system of claim 19 , wherein:

the satellite is configured to perform said routing of communications through different beams of the second plurality of beams while the particular beam of the first set of spot beams covers a particular location;

the first plurality of beams are spot beams divided into hopping groups;

the satellite further includes an antenna system, a digital channelizer and a selection matrix in communication with the digital channelizer and the antenna system;

the antenna system provides the first plurality of spot beams;

the digital channelizer routes communications between the first plurality of spot beams and the second plurality of spot beams; and

the selection matrix switches throughput among spot beams in a same hopping group.

Assignments (16)
CHANGE OF NAME Recorded Jan 7, 2026
From: MAXAR SPACE LLC
To: LANTERIS SPACE LLC
Reel/Frame 074270/0351 →
CHANGE OF NAME Recorded Nov 6, 2025
From: MAXAR SPACE LLC
To: LANTERIS SPACE LLC
Reel/Frame 073512/0398 →
RELEASE (REEL 060389/FRAME 0720) Recorded May 12, 2023
From: ROYAL BANK OF CANADA
To: MAXAR INTELLIGENCE INC.; MAXAR SPACE LLC
Reel/Frame 063633/0431 →
INTELLECTUAL PROPERTY SECURITY AGREEMENT Recorded May 5, 2023
From: MAXAR INTELLIGENCE INC. (F/K/A DIGITALGLOBE, INC.); AURORA INSIGHT INC.; MAXAR MISSION SOLUTIONS INC. ((F/K/A RADIANT MISSION SOLUTIONS INC. (F/K/A THE RADIANT GROUP, INC.)); MAXAR SPACE LLC (F/K/A SPACE SYSTEMS/LORAL, LLC); SPATIAL ENERGY, LLC; MAXAR SPACE ROBOTICS LLC ((F/K/A SSL ROBOTICS LLC) (F/K/A MDA US SYSTEMS LLC)); MAXAR TECHNOLOGIES HOLDINGS INC.
To: SIXTH STREET LENDING PARTNERS, AS ADMINISTRATIVE AGENT
Reel/Frame 063660/0138 →
TERMINATION AND RELEASE OF PATENT SECURITY AGREEMENT - RELEASE OF REEL/FRAME 060389/0782 Recorded May 4, 2023
From: WILMINGTON TRUST, NATIONAL ASSOCIATION, AS COLLATERAL AGENT
To: MAXAR INTELLIGENCE INC.; MAXAR SPACE LLC
Reel/Frame 063544/0074 →
TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS AND TRADEMARKS - RELEASE OF REEL/FRAME 044167/0396 Recorded May 4, 2023
From: ROYAL BANK OF CANADA, AS AGENT
To: MAXAR INTELLIGENCE INC.; MAXAR SPACE LLC
Reel/Frame 063543/0001 →
TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS AND TRADEMARKS - RELEASE OF REEL/FRAME 051258/0720 Recorded May 4, 2023
From: ROYAL BANK OF CANADA, AS AGENT
To: MAXAR INTELLIGENCE INC.; MAXAR SPACE LLC
Reel/Frame 063542/0543 →
RELEASE OF SECURITY INTEREST Recorded Jun 21, 2022
From: WILMINGTON TRUST, NATIONAL ASSOCIATION
To: DIGITALGLOBE, INC.; SPACE SYSTEMS/LORAL, LLC; RADIANT GEOSPATIAL SOLUTIONS LLC
Reel/Frame 060390/0282 →
SECURITY AGREEMENT Recorded Jun 17, 2022
From: MAXAR INTELLIGENCE INC.; MAXAR SPACE LLC
To: WILMINGTON TRUST, NATIONAL ASSOCIATION
Reel/Frame 060389/0782 →
SECURITY AGREEMENT Recorded Jun 16, 2022
From: MAXAR INTELLIGENCE INC.; MAXAR SPACE LLC
To: ROYAL BANK OF CANADA
Reel/Frame 060389/0720 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 11, 2021
From: SPACE SYSTEMS/LORAL, LLC
To: MAXAR SPACE LLC
Reel/Frame 054960/0466 →
PATENT SECURITY AGREEMENT Recorded Sep 23, 2020
From: SPACE SYSTEMS/LORAL, LLC
To: WILMINGTON TRUST, NATIONAL ASSOCIATION, AS NOTES COLLATERAL AGENT
Reel/Frame 053866/0810 →
SECURITY AGREEMENT (NOTES) Recorded Dec 12, 2019
From: DIGITALGLOBE, INC.; RADIANT GEOSPATIAL SOLUTIONS LLC; SPACE SYSTEMS/LORAL, LLC (F/K/A SPACE SYSTEMS/LORAL INC.)
To: WILMINGTON TRUST, NATIONAL ASSOCIATION, - AS NOTES COLLATERAL AGENT
Reel/Frame 051262/0824 →
AMENDED AND RESTATED U.S. PATENT AND TRADEMARK SECURITY AGREEMENT Recorded Dec 11, 2019
From: SPACE SYSTEMS/LORAL, LLC
To: ROYAL BANK OF CANADA, AS COLLATERAL AGENT
Reel/Frame 051258/0720 →
SECURITY INTEREST Recorded Oct 5, 2017
From: DIGITALGLOBE, INC.; MACDONALD, DETTWILER AND ASSOCIATES LTD.; MACDONALD, DETTWILER AND ASSOCIATES CORPORATION; MACDONALD, DETTWILER AND ASSOCIATES INC.; MDA GEOSPATIAL SERVICES INC.; SPACE SYSTEMS/LORAL, LLC; MDA INFORMATION SYSTEMS LLC
To: ROYAL BANK OF CANADA, AS THE COLLATERAL AGENT
Reel/Frame 044167/0396 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 3, 2016
From: HREHA, WILLIAM; WHARTON, ANNE ELIZABETH; FOULKE, DAVID LINFORD
To: SPACE SYSTEMS/LORAL, LLC
Reel/Frame 038804/0387 →
Continuity (2)
Provisional Application 62314938 · Mar 29, 2016
Related Publication 20180006370A1 · Jan 4, 2018
Cited By (1)
US 12,574,102