Claims
- 1. An optical add/drop node for bidirectional communication on a single fiber path in an optical WDM network, characterized by two main ports for connection in the single fiber path and a wavelength selective add/drop filter connected between the two main ports, the add/drop filter branching or deflecting light, arriving at the node on one of the two main ports and having wavelengths of first WDM channels, to an internal first drop filter not connected in the single fiber path, the internal first drop filter connected to branch or deflect light to at least one receiver and to receive light from at least one source and let it pass to the add/drop filter to pass the add/drop filter to said one of the two main ports to be issued therefrom to the single fiber path when the node is connected in an optical WDM network.
- 2. An optical add/drop node according to claim 1, characterized in that the internal first drop filter is arranged to branch or deflect light of wavelengths of at least one second WDM channel included in the first WDM channels to said at least one receiver and to receive light having wavelengths of least one third WDM channel included in the first channels and not included the at least one second channel from said at least one source.
- 3. An optical add/drop node according to claim 1, characterized in that the add/drop, filter comprises a band add/drop filter and/or the internal first drop filter comprises a band drop filter.
- 4. An optical add/drop node according to claim 1, characterized in that the add/drop filter comprises a band add/drop filter having a first band and the internal first drop filter comprises a band drop filter having a second band, the internal first drop filter deflecting light of wavelengths within the second band to said at least one receiver and receiving from said at least one source light of wavelengths outside the second band and within the first band.
- 5. An optical add/drop node according to claim 1, characterized in that said at least one source includes a plurality of light sources connected to an optical multiplexer and said at least one receiver includes a plurality of optical receivers connected to an optical demultiplexer.
- 6. An optical add/drop node according to claim 1, characterized in that said at least one source and/or said at least one receiver includes an internal second drop filter connected to at least one receiver and to at least one source.
- 7. An optical add/drop node according to claim 1, characterized in that two band add/drop filters having the first band are connected between the two main ports, a first one of the band add/drop filters branching or deflecting light, arriving at the node on a first one of the two main ports and a second one of the band add/drop filters branching or deflecting light, arriving at the node on a second one of the two main ports.
- 8. An optical add/drop node according to claim 7, characterized in that the two band add/drop filters are included in a single Bragg grating Mach-Zehnder interferometric filter.
- 9. An optical add/drop node according to claim 7, characterized in that the two band add/drop filters are included in a single device comprising a Bragg grating connected between two optical circulators.
- 10. An optical WDM network, characterized by a plurality of add/drop nodes connected by two or more parallel optical fiber paths, bidirectional communication channels arranged between pairs of the nodes over links being parts of one of the two or more optical fiber paths, the bidirectional communication channel between the nodes of each of said pairs carried on two different WDM wavelength channels, a different one for each direction.
- 11. An optical WDM network according to claim 10, characterized in that the wavelengths of the two wavelength channels used for the bidirectional communication channel between the nodes of each of said pairs are added/dropped in each node by one wavelength selective add/drop filter, in particular by one band add/drop filter.
- 12. An optical WDM network according to claim 11, characterized in that the optical fiber paths form closed rings and that the links are selected to be parts of suitable ones of the fiber paths so that the highest loss of traffic in the two or more rings becomes as low as possible.
- 13. An optical WDM network according to claim 10, characterized in that the plurality of add/drop nodes comprises a main node and a plurality of satellite nodes, a bidirectional communication channel arranged between the main node and each of the satellite nodes on at least one of the two or more parallel optical fiber paths, the bidirectional communication channel between the main node and each one of the satellite nodes carried on two different WDM wavelength channels, the two different WDM wavelength channels used by one satellite node being separate from the two different WDM wavelength channels used by any other satellite node communicating with the main node on the same optical fiber path. (FIG. 7b)
- 14. An optical WDM network according to claim 13, characterized in that the main node is connected to the two ends of each of the two or more parallel optical fiber paths, thereby forming rings that may be interrupted at the main node, each of the satellite nodes arranged for bidirectional communication with the main node on only one of the two or more parallel optical fiber paths, and on each of the two complementary segments of said one of the fiber paths in which the fiber path is divided by the satellite node and the main node.
- 15. An optical WDM network according to claim 14, characterized in that the satellite nodes are arranged to use for the bidirectional communication on a first one of the segments the same two different WDM wavelength channels as the bidirectional communication on a second, different one of the segments.
- 16. An optical WDM network according to claim 10, characterized in that the two different WDM wavelength channels used by a first pair of nodes communicating with each other on one of the two or more parallel optical fiber paths are separate from the two different WDM wavelength channels used by at least a second other pair of nodes communicating with each other on the same one of the two or more parallel optical fiber paths. (FIG. 8c)
- 17. An optical WDM network according to claim 10, characterized in that each of the two or more parallel optical fiber paths is connected to form a closed ring, a pair of nodes arranged for bidirectional communication with each other on one of the two or more parallel optical fiber paths on and on each of the two complementary segments of said one of the two or more parallel optical fiber paths in which the path is divided by the pairs of nodes.
- 18. An optical WDM network according to claim 17, characterized in that the nodes of the pair are arranged to use, for the bidirectional communication on the two complementary segments, the same two different WDM wavelength channels.
- 19. An optical WDM network according to claim 10, characterized in that the portion of one of the two or more parallel optical fiber paths that is used for the bidirectional communication between the nodes of a first pair of nodes has no part in common with the portion of the same one of the two or more parallel optical fiber paths used for the bidirectional communication channel between the nodes of a second pair of nodes, the two different WDM wavelength channels used for the bidirectional communication channel between the nodes of the first pair also used for the bidirectional communication channel between the nodes of the second pair.
Priority Claims (1)
Number |
Date |
Country |
Kind |
0101300-2 |
Apr 2001 |
SE |
|
RELATED APPLICATIONS
[0001] This application claims priority and benefit from Swedish patent application No. 0101300-2, filed Apr. 11, 2001 and U.S. provisional patent application No. 60/288,422, filed May 5, 2001, the entire teachings of which are incorporated herein by reference.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/SE02/00735 |
4/11/2002 |
WO |
|