EP0920153B1

Ring network for sharing protection resource by working communications paths

Abstract

This record has no abstract on file.

EP0920153B1, drawing sheet 1
Sheet 1 of 18

Term

Term ended

Expired 30 November 2018, 7.8 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

18 claims: 6 independent, 12 dependent

  1. 1
    A communications network comprising:- a plurality of transmission links;and - a plurality of nodes (15-108) for interconnecting said links to form a plurality of working rings (101, 103) and a plurality of protection rings (102, 104) in a bidirectional ring topology, and establishing a plurality of working paths (131) on each of said working rings and a plurality of protection paths (132) on each of said protection rings corresponding to said plurality of working paths (131) in response to a failure of said working paths, - a first one of said working paths (131) spanning across first and second nodes (106, 108) of said plurality of nodes (105-108) for transmission of a signal in a first direction of said bidirectional ring topology, and a second one of said working paths (131) spanning across said first and second nodes (106, 108) for transmission of a signal in a second direction opposite to said first direction, and - a first one of said protection paths (132) spanning across said first and second nodes (106, 108) for transmission of a signal in said second direction, and a second one of said protection paths (132) spanning across said first and second nodes (106, 108) for transmission of a signal in said first direction, wherein said bidirectional ring topology has an insertion point (106) for inserting a signal from an external source site into the ring topology and a termination point (108) for terminating the inserted signal at an external sink site, whereby said first and second nodes (106, 108) respectively serve as said insertion point and said termination point of the ring topology, characterized in that in that said first and second nodes (106, 108) are responsive to said second node (108) detecting a failure of one of said working paths (131) for transmitting a command signal from said second node (108) to said first node (106) to instruct said first node to perform a switchover from one of said first and second working paths (131) on which said failure was detected to a corresponding one of the first and second protection paths (132).
  2. 4
    The communications network according to one of the preceding claims, characterized in that first and second working path of said plurality of working paths (131) are assigned first and second network resources (λ1, λ2), respectively, and first and second protection paths of said plurality of protection paths (132) are assigned said second and first network resources (λ2, λ1), respectively, - in that said first node (106) uses said first network resource and said first working path (101) during normal working operation and is responsive to a failure of said first working ring (101) for using said second protection path instead of said first working path, - said second node (108) uses said second network resource and said second working path during normal working operation and is responsive to a failure of the second working ring (102) for using the first protection path instead of the second protection path.
  3. 5
    The communication network according to the preceding claims, characterized in that said first node (106) comprises:- a first multiplexer (307;1211, 1213) for multiplexing an add-up signal from the source site onto said one working ring (101, 103);- a second multiplexer (307';1212, 1214) for multiplexing the add-up signal from the source site onto said one protection ring (102, 104);- a first protection switch (212, 211;1231) connected to said source site;- a first path switch (305, 306;1221) for exclusively establishing a connection between said first demultiplexer (300;1201, 1203) and said first multiplexer (307;1211, 1213) and said first protection switch (212, 211;1231);and - first control circuitry (250;1250) for controlling said first protection switch (212, 211;1231) so that said add-up signal from the external source site is coupled via said first path switch (305, 306) to said first multiplexer (307;1211, 1213) when no failure is detected in said working rings (101, 103) and is coupled via said second path switch (305', 306';1222) to said second multiplexer (307';1212, 1214) when a failure is detected in said working rings (101, 103), and - in that said second node (108) comprises: - a first demultiplexer (300;1201, 1203) for receiving a multiplex signal from one of said working rings (101, 103) for producing a first drop-off signal;- a second dempultiplexer (300';1202, 1204) for receiving a multiplex signal from one of said protection rings (102, 104) for producing a second drop-off signal;- a second protection switch (213, 214;2132) connected to said sink site;- a second path switch (305', 306';1222) for exclusively establishing a connection between said second demultiplexer (300';1202, 1204) and said second multiplexer (307';1212, 1214) or between said second multiplexer (307';1212, 1214) and said second protection switch (213, 214;2132);and - second control circuitry (250;1250) for controlling said second protection switch (213, 214;1232) so that said first drop-off signal from said first demultiplexer (300;1201, 1203) is coupled to said external sink site when no failure is detected in said working rings (101, 103) and said second drop-off signal from the second demultiplexer (300';1202, 1204) is coupled to said external sink site, instead of the first drop-off signal, when a failure is detected in said working rings.
  4. 8
    The communication network according to one of the claims 5, 6 or 7, characterized in that said second protection switch (1232) comprises:- first, second, third and fourth optical couplers (1521, 1524, 1522, 1523) respectively connected to said first, second, third and fourth input ports;and - first, second, third and fourth optical switches (1525, 1528, 1526, 1527), said first optical switch (1525) having inputs respectively coupled to said first, third and fourth optical couplers (1521, 1522, 1523), said second optical switch (1528) having inputs respectively coupled to said second, third and fourth optical couplers (1524, 1522, 1523), said third optical switch (1526) having inputs coupled respectively to said first and third optical couplers (1521, 1522), and said fourth optical switch (1527) having inputs respectively coupled to said second and fourth optical couplers (1528, 1527).
  5. 11
    A network node for a bidirectional ring topology network having first and second working rings (101, 103) and first and second protection rings (102, 104), comprising:- a first demultiplexer (300;1201, 1203) for receiving a multiplex signal from one of said working rings (101, 103) for producing a first drop-off signal;- a first multiplexer (307;1211, 1213) for multiplexing an add-up signal form the source site onto said one working ring (101, 103);- a first protection switch (212, 211;1231) connected to said source sit;- a first path switch (305, 306;1221) for exclusively establishing a connection between said first demultiplexer 8300;1201, 1203) and said first multiplexer (307;1211, 1213) or between said first multiplexer (307;1211, 1213) and said first protection switch (212, 211;1231);- a second demultiplexer (300';1202, 1204) for receiving a multiplex signal from one of said protection rings (102, 104) for producing a second drop-off signal;- a second multiplexer (307';1212, 1214) for multiplexing the add-up signal from the source site onto said one protection ring (102, 104);- a second protection switch (213, 214;2132) connected to said sink site;- a second path switch (305', 306';1222) for exclusively establishing a connection between said second demultiplexer (300';1202, 1204) and said second multiplexer (307';1212, 1214) or between said second multiplexer (307';1212, 1214) and said second protection switch (213, 214;2132);and - control circuitry (215;1250) for monitoring said working rings (101, 103)and controlling said first and second protection switches, characterized in that each of said working rings and each of said protection rings has an insertion point (106) for inserting an add-up signal from an external source site into the ring and a termination point (108) for extracting a signal from the ring onto an external sink site, said network node serving as one of said insertion and termination points, - in that , if said network node serves as said insertion point, said control circuitry (215;1250) controls said first protection switch (212, 211;1231) so that said addup signal from the external source site is coupled via said first path switch (305, 306) to said first multiplexer (307;1211, 1213) when no failure is detected in said working rings (101, 103) and is coupled via said second path switch (305', 306';1222) to said second multiplexer (307';1212, 1214) when a failure is detected in said working rings (101, 103);and - in that , if said network node serves as said termination point, said control circuitry controls said second protection switch (213, 214;2132) so that said first drop-off signal from said first demultiplexer (300;1201, 1203) is coupled to said external sink site when no failure is detected in said working rings (101, 103) and - said second drop-off signal from the second demultiplexer (307', 1212, 1214) is coupled to said external sink site, instead of the first drop-off signal, when a failure is detected in said working rings.
  6. 17
    A fault recovery method for a communications network comprising:- a plurality of transmission links;and - a plurality of nodes (105-108) for interconnecting said links to form a plurality of working rings (101, 103) and a plurality of protection rings (102, 104) in a bidirectional ring topology, and establishing a plurality of working paths (131) on each of said working rings and a plurality of protection paths (132) on each of said protection rings corresponding to said plurality of working paths (131) in response to a failure of said working paths, - a first one of said working paths (131) spanning across first and second nodes (106, 108) of said plurality of nodes (105-108) for transmission of a signal in a first direction of said bidirectional ring topology, and a second one of said working paths (131) spanning across said first and second nodes (106, 108) for transmission of a signal in a first direction of said bidirectional ring topology, and a second one of said working paths (131) spanning across said first and second nodes (106, 108) for transmission of a signal in a second direction opposite to said first direction, and - a first one of said protection paths (132) spanning across said first and second nodes (106, 108) for transmission of a signal in said second direction, and a second one of said protection paths (132) spanning across said first and second nodes (106, 108) for transmission of a signal in said first direction, wherein said bidirectional ring topology, an insertion point (106) for inserting a signal from an external source site into the ring topology and a termination point (108) for terminating the inserted signal at an external sink site, so that said first and second nodes (106, 108) respectively serve as said insertion so that said first and second nodes (106, 108) respectively serve as said insertion point and said termination point of the ring topology and use said first and second working paths (131) during normal working operation, characterized by : - monitoring at said second node (108) for detecting a failure in one of said working paths;- responsive to said second node (108) detecting said failure, transmitting a command signal from said second node (108) to said first node (106) and performing a switchover from one of said first and second working paths (131) on which said failure was detected to a corresponding one of the first and second protection paths (132);and - responsive to said command signal, performing a switchover, at said first node (106) from said one of said first and second working paths (131) to said corresponding one of the first and second protection paths (132).