IP Library Patent Application 10793021
Patent Application
App. No. 10/793,021

Scalable multi-satellite spot beam architecture

Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US None
App. No.
10/793,021
Abstract

A scalable multi-satellite spot-beam network architecture that employs a plurality (N) of relatively small (low power) active spot beam satellites and a number (R) of spare satellites, all of which are substantially similar in design, has been described. The plurality of satellites is substantially collocated at a given orbital location to provide coverage of a desired geographic area. Each active satellite has 1/N of the total capacity of a slot, and there is significant amount of interchangeability among the active and spare satellites, enabling the spare and active satellites to provide protection against partial or full failures of any satellite or even a few (up to R) satellites. The system is scalable since a fraction of the N active satellites is required to provide capacity to the full geographic area, and additional satellites can be launched and additional gateways can be deployed to augment the network capacity. Communication devices (users) located in any of the spot beams communicate with each other and the worldwide telecommunications network via satellites and gateways of the scalable system architecture.

Claims (20)

1 . A scalable geostationary satellite system architecture comprising:

a plurality (N) of active and a number (R) of spare satellites, all of which are substantially similar and substantially collocated at a predetermined orbital location, each active satellite providing a plurality of substantially identical spot beams that respectively cover predetermined portions of a desired geographic area, with each respective active satellite providing approximately 1/N of the total transmission capacity of the system architecture.

2 . The system architecture recited in claim 1 wherein the coverage of the individual satellites is adjustable by modifying the satellite attitude (pitch and roll) and/or satellite antenna reconfigurations to provide coverage of any of the remaining satellites.

3 . The system architecture recited in claim 1 wherein the coverage of the individual satellites is adjustable by beam steering to provide coverage of any of the remaining satellites.

4 . The system architecture recited in claim 1 wherein the frequencies used in downlink and uplink user spot beams is adjustable.

5 . The system architecture recited in claim 1 wherein a fraction of the active N satellites is required to provide capacity to the full desired geographic coverage area.

6 . The system architecture recited in claim 1 wherein the spot beams are generally arranged as East-West rows of beams.

7 . The system architecture recited in claim 1 wherein the spot beams are generally arranged as North-South columns of beams.

8 . The system architecture recited in claim 1 wherein the spot beams comprise single polarization beams.

9 . The system architecture recited in claim 1 wherein the spot beams comprise dual polarization beams.

10 . The system architecture recited in claim 1 further comprising:

a scalable ground network comprising L substantially identical gateways and a diversity gateway interconnected by a ground network, each gateway providing 1/M of total forward link and 1/M of total return link transmission capacity of the system architecture, where M is the total number of gateways.

11 . The system architecture recited in claim 10 wherein the ground network comprises a fiber network providing gateway interconnections.

12 . The system architecture recited in claim 10 wherein the scalable ground network uses Q times the user beam spectrum to reduce the number of gateways in the network by the same factor Q.

13 . The system architecture recited in claim 10 wherein the plurality of substantially similar satellites each comprise:

a plurality of multi-beam antennas that produce the required number of user spot beams to cover a desired geographic region and a required number of gateway beams, M.

14 . A communication method comprising the steps of:

launching a plurality (N) of active and a number (R) of spare satellites, all of which are substantially similar and substantially collocated at a predetermined orbital location, and wherein the plurality of satellites are configured to provide a plurality of substantially identical spot beams that respectively cover predetermined portions of a desired geographic area, with each respective active satellite providing approximately 1/N of the total transmission capacity;

providing a scalable ground network that is in communication with the plurality of satellites that comprises L substantially identical gateways and a diversity gateway interconnected by a ground network, each gateway providing 1/M of total forward link and 1/M of total return link transmission capacity, where M is the total number of gateways; and

communicating between communication devices located in any of the spot beams via the plurality of satellites and ground network.

Assignments (3)
SECURITY AGREEMENT Recorded Nov 9, 2007
From: TELESAT CANADA; TELESAT NETWORK SERVICES, L.L.C.; TELESAT NETWORK SERVICES, INC.
To: MORGAN STANLEY & CO. INCORPORATED
Reel/Frame 020092/0560 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 22, 2007
From: LORAL SPACECOM CORP.
To: LORAL SKYNET CORPORATION
Reel/Frame 019055/0808 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 4, 2004
From: HEDINGER, ROBERT A.; CARLIN, JAMES W.; GOETTLE, PETER E.
To: LORAL SPACECOM CORP.
Reel/Frame 015053/0799 →