IP Library Patent Application 18872855
Patent Application
App. No. 18/872,855

REMOTE OPTICAL FIBER SWITCHING NODE AND ITS MONITORING METHOD

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Quick Facts
Patent No.
US None
App. No.
18/872,855
Abstract

The present disclosure provides a remote optical path switching node connects two loop networks in which optical fibers are connected in a loop form. The two loop networks include an upper loop close to a tester that emits a test beam and lower loops away from the tester. The remote optical path switching node includes: an optical cross-connect connected to an optical fiber included in the lower loop; a test optical coupler connected to a test optical fiber through which a test beam propagates in the upper loop and which is connectable to the optical cross-connect; a control unit configured to control the connection between the optical cross-connect and the test optical coupler; and a light extraction unit configured to detect a test beam propagating in the upper loop and emitted from the test optical coupler or the optical cross-connect.

Claims (38)

1 . A remote optical path switching node configured to connect two loop networks in which optical fibers are connected in a loop form,

wherein the two loop networks include an upper loop close to a tester configured to emit a test beam and lower loops away from the tester, and

the remote optical path switching node comprises:

an optical cross-connect connected to an optical fiber included in the lower loop;

a test optical coupler connected to a test optical fiber through which a test beam is configured to propagate in the upper loop and which is connectable to the optical cross-connect;

a control unit configured to control the connection between the optical cross-connect and the test optical coupler; and

a light extraction unit configured to detect a test beam propagating in the upper loop and emitted from the test optical coupler or the optical cross-connect.

2 . The remote optical path switching node according to claim 1 ,

wherein the test optical coupler includes four ports,

first and second ports of the test optical coupler are respectively connected to optical fibers of different paths in the upper loop, and

the test optical coupler is configured to emit a test beam incident on the first port to a fourth port on a different path from the first port, and emit emits a test beam incident on the second port to a third port on a different path from the second port.

3 . The remote optical path switching node according to claim 2 ,

wherein the optical cross-connect includes four ports, and

the third and fourth ports of the optical cross-connect are respectively connected to optical fibers of different paths in the lower loop, and

the control unit is configured to connect the lower loops to each other by connecting the first port of the optical cross-connect to the third port of the test optical coupler and connecting the second port of the optical cross-connect to the fourth port of the test optical coupler.

4 . The remote optical path switching node according to claim 2 ,

wherein the optical cross-connect includes four ports,

the third and fourth ports of the optical cross-connect are respectively connected to optical fibers of different paths in the lower loop, and

the control unit is configured to connect the upper loop and the lower loop by

(i) connecting the fourth port of the test optical coupler to an optical fiber of the upper loop,

connecting the third port of the test optical coupler to the first port of the optical cross-connect, and

connecting the first port to the third port in the optical cross-connect, or

(ii) connecting the third port of the test optical coupler to an optical fiber of the upper loop,

connecting the fourth port of the test optical coupler to the second port of the optical cross-connect, and

connecting the second port to the fourth port in the optical cross-connect.

5 . The remote optical path switching node according to claim 1 , wherein two or more of the optical cross-connect, the test optical coupler, and the light extraction unit are integrated.

6 . An optical fiber network comprising:

the remote optical path switching node according to claim 1 ;

a test optical fiber configured to transmit a test beam to the remote optical path switching node; and

a tester configured to cause a test beam to be incident on the test optical fiber.

7 . A monitoring method executed by a remote optical path switching node configured to connect two loop networks in which optical fibers are connected in a loop form,

wherein the two loop networks include an upper loop close to a tester configured to emit a test beam and lower loops away from the tester,

the remote optical path switching node includes

an optical cross-connect connected to an optical fiber included in the lower loop,

a test optical coupler connected to a test optical fiber through which a test beam is configured to propagate in the upper loop and which is connectable to the optical cross-connect, and

a control unit controlling connection between the optical cross-connect and the test optical coupler,

the control unit configured to connect the upper loop and the lower loop or connect the lower loops to each other using the optical cross-connect and the test optical coupler, and

a light extraction unit configured to detect the test beam propagating in the upper loop and emitted from the test optical coupler or the optical cross-connect.

Assignments (3)
CHANGE OF NAME Recorded Aug 14, 2025
From: NIPPON TELEGRAPH AND TELEPHONE CORPORATION
To: NTT, INC.
Reel/Frame 072412/0770 →
CHANGE OF NAME Recorded Aug 14, 2025
From: NIPPON TELEGRAPH AND TELEPHONE CORPORATION
To: NTT, INC.
Reel/Frame 072460/0361 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 9, 2024
From: NAKAE, KAZUHIDE; KOYAMA, RYO; WATANABE, HIROSHI; KATAYAMA, KAZUNORI
To: NIPPON TELEGRAPH AND TELEPHONE CORPORATION
Reel/Frame 069519/0552 →