IP Library Granted Patent US 7,092,636
Granted Patent B2
US 7,092,636 · App. 10/156,172 · Granted Aug 15, 2006

Optical network employing erbium-doped fiber amplifiers

Assignee: Dominion Lasercom, Inc.
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Quick Facts
Patent No.
US 7,092,636
App. No.
10/156,172
Granted
Aug 15, 2006
Kind
B2
Abstract

A point-to-multipoint bi-directional wide area telecommunications network employing atmospheric optical communication. The network comprises a primary transceiver unit, a plurality of subscriber transceiver units and an optical router. The primary transceiver unit may send data destined for the subscriber transceiver units through the optical router, and the subscriber transceiver units may send data destined for the primary transceiver unit through the optical router. The primary transceiver unit and optical router communicate by means of light beams which are transmitted through the atmosphere. Similarly, the optical router and the subscriber transceiver units communicate by means of light beams which are transmitted through the atmosphere.

Claims (23)

1. A terrestrial optical communication network comprising:

a plurality of fiber optic links and free-space links between which optical signals are optically coupled by erbium doped fiber amplifiers (EDFAs), wherein a power gain of at least one of the EDFAs is operable to be controlled in response to one or more factors;

at least one optical router connected to a plurality of links, wherein the optical router includes one or more EDFAs to optically couple the optical signals from one of the links connected to the optical router to another one of the links connected to the optical router.

2. A terrestrial optical communication network as defined in claim 1 wherein the one or more factors comprise weather conditions.

3. A terrestrial optical communication network as defined in claim 1 wherein the one or more factors comprise an optical signal received over one of the free-space links.

4. A terrestrial optical communication network as defined in claim 1 , further comprising a control system for controlling the power gain of at least one of the EDFAs.

5. A terrestrial optical communication network as defined in claim 4 , wherein the control system is an active optics control system.

6. A terrestrial optical communication network as defined in claim 1 , wherein the EDFAs include a transmitting EDFA, wherein the transmitting EDFA amplifies one of the optical signals before its transmission over at least one of the free-space links, and further comprising a controller connected to the transmitting EDFA to control the optical power gain of the transmitting EDFA to adjust the optical power of the optical signal transmitted over the one free-space link.

7. A terrestrial optical communication network as defined in claim 1 , wherein the EDFAs include a receiving EDFA, wherein the receiving EDFA amplifies one of the optical signals after its reception over at least one of the free-space links, and further comprising a controller connected to the receiving EDFA to control the optical power gain of the receiving EDFA to adjust the optical power of the optical signal delivered by the receiving EDFA.

8. A terrestrial optical communication network comprising;

a plurality of network elements coupled together by a plurality of fiber optic links and free-space links, wherein the terrestrial optical communication network further comprises one or more erbium doped fiber amplifiers (EDFA) in one or more of the network elements for amplifying light beams in the network in order to achieve appropriate signal power levels of the light beams within the network;

at least one optical router connected to a plurality of links, wherein the optical router includes one or more EDFAs to optically couple the optical signals from one of the links connected to the optical router to another one of the links connected to the optical router.

9. A terrestrial optical communication network as defined in claim 8 , wherein the one or more EDFAs are operable to provide adjustable light beam power control according to one or more factors.

10. A terrestrial optical communication network as defined in claim 9 wherein the one or more factors comprise weather conditions.

11. A terrestrial optical communication network as defined in claim 9 wherein the one or more factors comprise an optical signal received over one of the free-space links.

12. A terrestrial optical communication network as defined in claim 8 , further comprising a control system for controlling the power gain of at least one of the EDFAs.

13. A terrestrial optical communication network as defined in claim 8 , wherein the EDFAs include a transmitting EDFA, wherein the transmitting EDFA amplifies one of the optical signals before its transmission over at least one of the free-space links, and further comprising a controller connected to the transmitting EDFA to control the optical power gain of the transmitting EDFA to adjust the optical power of the optical signal transmitted over the one free-space link.

14. A terrestrial optical communication network as defined in claim 8 , wherein the EDFAs include a receiving EDFA, wherein the receiving EDFA amplifies one of the optical signals after its reception over at least one of the free-space links, and further comprising a controller connected to the receiving EDFA to control the optical power gain of the receiving EDFA to adjust the optical power of the optical signal delivered by the receiving EDFA.

15. A terrestrial optical communication network comprising:

a plurality of network elements;

a plurality of fiber optic links and free-space links for coupling the plurality of network elements through transfer of light beams; and

one or more erbium doped fiber amplifiers (EDFA) for amplifying the light beams in the network in order to achieve appropriate signal power levels of the light beams within the network;

wherein the plurality of network elements comprises at least one optical router connected to a plurality of the links, wherein the optical router includes one or more EDFAs to optically couple the optical signals from one of the links connected to the optical router to another one of the links connected to the optical router.

Assignments (8)
CORRECTIVE ASSIGNMENT TO CORRECT THE ADDRESS IN SECURITY RELEASE PREVIOUSLY RECORDED AT REEL: 033369 FRAME: 0242. ASSIGNOR(S) HEREBY CONFIRMS THE RELEASE OF SECURITY INTEREST. Recorded Jul 25, 2014
From: NPK HOLDING AB
To: SKYFIBER, INC.
Reel/Frame 033417/0814 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 21, 2014
From: SKYFIBER, INC.
To: SEAFORT INTERNATIONAL TRADING, S.R.L.
Reel/Frame 033352/0720 →
RELEASE OF SECURITY INTEREST Recorded Jul 21, 2014
From: NPK HOLDING AB
To: SKYFIBER, INC.
Reel/Frame 033369/0242 →
SECURITY AGREEMENT Recorded Nov 9, 2010
From: SKYFIBER, INC.
To: NPK HOLDING AB
Reel/Frame 025339/0444 →
CHANGE OF NAME Recorded May 1, 2009
From: DOMINION LASERCOM, INC.
To: SKYFIBER, INC.
Reel/Frame 022619/0815 →
RELEASE OF SECURITY INTEREST Recorded Feb 26, 2009
From: NPK HOLDING AB, A LIMITED LIABILITY COMPANY CONSTITUTED UNDER THE LAWS OF THE KINGDOM OF SWEDEN
To: DOMINION LASERCOM, INC., A DELAWARE CORPORATION
Reel/Frame 022309/0675 →
CORRECTIVE ASSIGNMENT TO CORRECT THE NATURE OF CONVEYANCE TO A SECURITY AGREEMENT; TO REVERSE THE IDENTIFICATION OF THE PARTIES AND ADD PAGES TO BE RECORDED PREVIOUSLY RECORDED ON REEL 022309 FRAME 0675. ASSIGNOR(S) HEREBY CONFIRMS THE GRANT OF SECURITY INTEREST. Recorded Feb 26, 2009
From: DOMINION LASERCOM, INC., A DELAWARE CORPORATION
To: NPK HOLDING AB, A LIMITED LIABILITY COMPANY CONSTITUTED UNDER THE LAWS OF THE KINGDOM OF SWEDEN
Reel/Frame 022309/0899 →
RELEASE OF SECURITY INTEREST Recorded Feb 26, 2009
From: WILLIAMS, SHANE
To: DOMINION LASERCOM, INC., A DELAWARE CORPORATION
Reel/Frame 022309/0646 →
Continuity (4)
Continuation 1005535900 · Jan 22, 2002
Continuation 0910682600 · Jun 29, 1998
Continuation In Part 0862572500 · Mar 29, 1996
Related Publication 20020141020A1 · Oct 3, 2002