Claims
- 1. A bidirectional transmission system comprising:
a first optical transmission path; an insertion circulator; a removal circulator; wherein an optical signal is introduced onto the optical transmission path and a counter-propagating optical signal is introduced onto the optical transmission path through the insertion circulator and removed from the optical transmission path through the removal circulator.
- 2. The bidirectional optical transmission system of claim 1, wherein the counter-propagating optical signal is an optical service channel.
- 3. The bidirectional optical transmission system of claim 1, wherein the optical signal is in the L band.
- 4. The bidirectional optical transmission system of claim 3, wherein the counter-propagating optical signal is in the range of one of 1510 nm, 1540 nm and 1625 nm.
- 5. The bidirectional optical transmission system of claim 1, wherein the counter-propagating optical signal is generated by an uncooled DFB laser.
- 6. The bidirectional optical transmission system of claim 1, wherein the wavelength range of the counter-propagating optical signal can vary up to 12 nm.
- 7. The bidirectional optical transmission system of claim 1, wherein the counter-propagating optical signal includes a wavelength division multiplex signal.
- 8. The bidirectional optical transmission system of claim 7, wherein the counter-propagating signal includes an optical service channel.
- 9. The bidirectional optical transmission system of claim 8, wherein the wave division multiplex signal and the optical service channel are separated by a wavelength demultiplexing filter.
- 10. The bidirectional optical transmission system of claim 1, wherein the counter-propagating optical signal is amplified by a raman source.
- 11. The bidirectional optical transmission system of claim 1, wherein the optical signal is gigabit Ethernet.
- 12. The bidirectional optical transmission system of claim 11, wherein the gigabit Ethernet is full duplex.
- 13. An optical transmission system comprising:
a first transceiver; a second transceiver; a first bidirectional optical transmission path for carrying a first communication signal between the first transceiver and the second transceiver; a second bidirectional optical transmission path for carrying a second communication signal between the second transceiver and the first transceiver; a third transceiver; a fourth transceiver; a first insertion circulator, connected to the first bidirectional optical transmission path and the third transceiver, for insertion of a first counter-propagating communication signal and a first removal circulator, connected to the first bidirectional optical path and the fourth transceiver, for removing the first counter-propagating communication signal; a second insertion circulator, connected to the second bidirectional optical transmission path and the fourth transceiver, for insertion of a second counter-propagating communication signal; and a second removal circulator, connected to the second bidirectional optical path and the third transceiver, for removing the second counter-propagating communication signal.
- 14. The optical transmission system of claim 13, wherein the first and second counter-propagating signals are optical service channels.
- 15. The optical transmission system of claim 13, wherein the first and second communication signals are in the L band.
- 16. The optical transmission system of claim 15, wherein the first and second counter-propagating communication signals are within the range of one of 1510 nm, 1540 nm and 1625 nm.
- 17. The optical transmission system of claim 13, wherein the first and second counter-propagating signals are generated by uncooled DFB lasers.
- 18. The optical transmission system of claim 13, wherein the first and second communication signals are wave division multiplex channels.
- 19. The optical transmission system of claim 13, wherein the first counter-propagating communication signal includes a wave division multiplex transmission band and an optical service channel.
- 20. The optical transmission system of claim 19, wherein the second counter-propagating communication channel includes a wave division multiplex transmission band and an optical service channel.
- 21. The optical transmission system of claim 19, wherein the wave division multiplex channel and the optical service channel are separated by a wavelength multiplexing filter.
- 22. The optical transmission system of claim 13, wherein the first counter-propagating communication signal is amplified by a Raman source.
- 23. The optical transmission system of claim 22, wherein the second counter-propagating communication signal is amplified by a Raman source.
- 24. The optical transmission system of claim 13 wherein the optical signal is gigabit Ethernet.
- 25. The optical transmission system of claim 24 wherein the gigabit Ethernet is full duplex.
- 26. A method of combining optical signals on a single optical transmission path comprising the steps of:
communicating an optical signal on the transmission path; inserting a counter-propagating optical signal on the transmission path through an insertion circulator; and removing the counter-propagating optical signal from the transmission path through a removal circulator.
- 27. The method claim 26, wherein the counter-propagating optical signal is an optical service channel.
- 28. The method of claim 26, wherein the optical signal is in the L band.
- 29. The method of claim 26, wherein the counter-propagating optical signal is the range of one of 1510 nm, 1540 nm and 1625 nm.
- 30. The method of claim 26, wherein the counter-propagating optical signal is generated by an uncooled DFB laser.
- 31. The method of claim 26, wherein the wavelength range of the counter-propagating optical signal can vary up to 12 nm.
- 32. The method of claim 26, wherein the counter-propagating optical signal includes a wavelength division multiplex signal.
- 33. The method of claim 32, wherein the counter-propagating signal includes an optical service channel.
- 34. The method of claim 33, wherein the wave division multiplex signal and the optical service channel are separated by a wavelength multiplexing filter.
- 35. The method of claim 26, wherein the counter-propagating optical signal is amplified by a raman source.
- 36. The method of claim 26, wherein the optical signal is gigabit Ethernet.
- 37. The method of claim 36, wherein the gigabit Ethernet is full duplex.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to Provisional Application Serial No. 60/377,159, entitled “Wave Division Multiplexed Optical Transport System Utilizing Optical Circulators to Isolate an Optical Service Channel”, by Eiselt, et al., filed Apr. 30, 2002, and Provisional Application Serial No. 60/376,978, entitled “Method and Architecture for Utilizing Gigabit Ethernet as an Optical Supervisory Channel”, by Jeffrey Lloyd Cox, filed Apr. 30, 2002.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60377159 |
Apr 2002 |
US |
|
60376978 |
Apr 2002 |
US |