Claims
- 1. An optical network, comprising:
a first optical fiber segment having a first end and a second end; a second optical fiber segment having a first end and a second end; a plurality of one or more optical nodes coupled to the second end of the first optical fiber segment and the second end of the second optical fiber segment; and a plurality of one or more optical decoupling nodes coupled to the first end of the first optical fiber segment and the first end of the second optical fiber segment, wherein the plurality of one or more optical nodes includes one or more optically transparent nodes being optically transparent for one or more optical wavelengths at least optically traversing the one or more optically transparent nodes, the one or more optically transparent nodes being optically transparent in at least one direction, wherein one or more optical wavelengths carry traffic of the optical network, and wherein the plurality of one or more optical decoupling nodes substantially prevents at least one of the one or more optical wavelengths from at least optically traversing the plurality of one or more optical decoupling nodes.
- 2. The network of claim 1, wherein each of the plurality of one or more optical nodes includes an add drop multiplexer.
- 3. The network of claim 1, wherein each of the plurality of one or more optical decoupling nodes includes an add drop multiplexer.
- 4. The apparatus of claim 1, wherein the plurality of one or more optical nodes includes at least two optical nodes, and the plurality of one or more optical nodes includes a plurality of one or more optical fiber segments coupling the at least two optical nodes.
- 5. The network of claim 1, wherein the plurality of one or more optical decoupling nodes includes at least two optical decoupling nodes, and the plurality of one or more optical decoupling nodes includes a plurality of one or more optical waveguides coupling the at least two optical decoupling nodes.
- 6. The network of claim 5, wherein the plurality of one or more optical waveguides includes one or more optical fiber segments.
- 7. The network of claim 1, wherein at least one node of the plurality of one or more optical decoupling nodes includes:
a wavelength add; a wavelength drop; a first optical port at least optically coupled to the wavelength add; and a second optical port at least optically coupled to the wavelength drop.
- 8. The network of claim 7, wherein the wavelength add adds a single wavelength.
- 9. The network of claim 7, wherein the wavelength drop drops a single wavelength.
- 10. The network of claim 7, wherein the wavelength add adds multiple wavelengths.
- 11. The network of claim 7, wherein the wavelength drop drops multiple wavelengths.
- 12. The network of claim 7, wherein at least one node of the plurality of one or more optical decoupling nodes further includes:
a third optical port at least optically coupled to the wavelength add; and a fourth optical port at least optically coupled to the wavelength drop.
- 13. The network of claim 1, wherein at least one node of the plurality of one or more optical nodes includes:
a wavelength add; a wavelength drop; a first optical port at least optically coupled to the wavelength add; and a second optical port at least optically coupled to the wavelength drop.
- 14. The network of claim 13, wherein the wavelength add adds a single wavelength.
- 15. The network of claim 13, wherein the wavelength drop drops a single wavelength.
- 16. The network of claim 13, wherein the wavelength add adds multiple wavelengths.
- 17. The network of claim 13, wherein the wavelength drop drops multiple wavelengths.
- 18. The network of claim 13, wherein at least one node of the plurality of one or more optical nodes further includes:
a third optical port at least optically coupled to the wavelength add; and a fourth optical port at least optically coupled to the wavelength drop.
- 19. The network of claim 18, wherein the third optical port and the fourth optical port are at least optically coupled with at least an optical waveguide.
- 20. The network of claim 19, wherein the optical waveguide includes one or more optical fiber segments.
- 21. The network of claim 1, wherein each node of the plurality of one or more optical decoupling nodes is associated with a logical ring of the optical network.
- 22. The network of claim 1, wherein the optical network is adapted to carry out protection switching.
- 23. The network of claim 1, wherein available bandwidth of the optical network is increased by adding one or more optical decoupling nodes to the plurality of one or more optical decoupling nodes.
- 24. The network of claim 23, wherein traffic in the optical network is not disrupted by adding one or more optical decoupling nodes to the plurality of one or more optical decoupling nodes.
- 25. The network of claim 23, wherein the plurality of one or more optical decoupling nodes and the added one or more optical decoupling nodes are located together.
- 26. The network of claim 23, wherein manual modification of the plurality of one or more optical nodes is unnecessary to increasing the available bandwidth.
- 27. An optical network, comprising:
a first optical fiber segment having a first end and a second end; a second optical fiber segment having a first end and a second end; a plurality of one or more optical nodes coupled to the second end of the first optical fiber segment and the second end of the second optical fiber segment; and a plurality of one or more optical anti-feedback nodes coupled to the first end of the first optical fiber segment and the first end of the second optical fiber segment, wherein the plurality of one or more optical anti-feedback nodes substantially prevents optical feedback in the optical network, wherein the plurality of one or more optical nodes includes one or more optically transparent nodes being optically transparent for one or more optical wavelengths at least optically traversing the one or more optically transparent nodes, the one or more optically transparent nodes being optically transparent in at least one direction.
- 28. The network of claim 27, wherein each of the plurality of one or more optical nodes includes an add drop multiplexer.
- 29. The network of claim 27, wherein each of the plurality of one or more optical anti-feedback nodes includes an add drop multiplexer.
- 30. The network of claim 27, wherein the plurality of one or more optical nodes includes at least two optical nodes, and the plurality of one or more optical nodes includes a plurality of one or more optical fiber segments coupling the at least two optical nodes.
- 31. The network of claim 27, wherein the plurality of one or more optical anti-feedback nodes includes at least two optical anti-feedback nodes, and the plurality of one or more optical anti-feedback nodes includes a plurality of one or more optical waveguides coupling the at least two optical anti-feedback nodes.
- 32. The network of claim 31, wherein the plurality of one or more optical waveguides includes one or more optical fiber segments.
- 33. The network of claim 27, wherein at least one node of the plurality of one or more optical anti-feedback nodes prevents optical feedback in the optical network by breaking an optical ring, the optical ring including the first optical fiber segment, the second optical fiber segment, and the plurality of one or more optical nodes.
- 34. The network of claim 33, wherein at least one node of the plurality of one or more optical anti-feedback nodes breaks the optical ring at the optical node at least between the first end of the first optical fiber segment and the first end of the second optical fiber segment.
- 35. The network of claim 27, wherein at least one node of the plurality of one or more optical anti-feedback nodes includes:
a wavelength add; a wavelength drop; a first optical port at least optically coupled to the wavelength add; and a second optical port at least optically coupled to the wavelength drop.
- 36. The network of claim 35, wherein the wavelength add adds a single wavelength.
- 37. The network of claim 35, wherein the wavelength drop drops a single wavelength.
- 38. The network of claim 35, wherein the wavelength add adds multiple wavelengths.
- 39. The network of claim 35, wherein the wavelength drop drops multiple wavelengths.
- 40. The network of claim 35, wherein at least one node of the plurality of one or more optical anti-feedback nodes further includes:
a third optical port at least optically coupled to the wavelength add; and a fourth optical port at least optically coupled to the wavelength drop.
- 41. The network of claim 27, wherein at least one node of the plurality of one or more optical nodes includes:
a wavelength add; a wavelength drop; a first optical port at least optically coupled to the wavelength add; and a second optical port at least optically coupled to the wavelength drop.
- 42. The network of claim 41, wherein the wavelength add adds a single wavelength.
- 43. The network of claim 41, wherein the wavelength drop drops a single wavelength.
- 44. The network of claim 41, wherein the wavelength add adds multiple wavelengths.
- 45. The network of claim 41, wherein the wavelength drop drops multiple wavelengths.
- 46. The network of claim 41, wherein at least one node of the plurality of one or more optical nodes further includes:
a third optical port at least optically coupled to the wavelength add; and a fourth optical port at least optically coupled to the wavelength drop.
- 47. The network of claim 46, wherein the third optical port and the fourth optical port are at least optically coupled with at least an optical waveguide.
- 48. The network of claim 47, wherein the optical waveguide includes one or more optical fiber segments.
- 49. The network of claim 27, wherein each node of the plurality of one or more optical anti-feedback nodes is associated with a logical ring of the optical network.
- 50. The network of claim 27, wherein the optical network is adapted to carry out protection switching.
- 51. The network of claim 27, wherein available bandwidth of the optical network is increased by adding one or more optical anti-feedback nodes to the plurality of one or more optical anti-feedback nodes.
- 52. The network of claim 51, wherein traffic in the optical network is not disrupted by adding one or more optical anti-feedback nodes to the plurality of one or more optical anti-feedback nodes.
- 53. The network of claim 51, wherein the plurality of one or more optical anti-feedback nodes and the added one or more optical anti-feedback nodes are located together.
- 54. The network of claim 51, wherein manual modification of the plurality of one or more optical nodes is unnecessary to increasing the available bandwidth.
- 55. An optical network, comprising:
a first optical fiber segment having a first end and a second end; a second optical fiber segment having a first end and a second end; a plurality of one or more optical nodes coupled to the second end of the first optical fiber segment and the second end of the second optical fiber segment; and a plurality of one or more optical anti-crosstalk nodes coupled to the first end of the first optical fiber segment and the first end of the second optical fiber segment, wherein the plurality of one or more optical anti-crosstalk nodes substantially prevents coherent crosstalk in the optical network, wherein the plurality of one or more optical nodes includes one or more optically transparent nodes being optically transparent for one or more optical wavelengths at least optically traversing the one or more optically transparent nodes, the one or more optically transparent nodes being optically transparent in at least one direction.
- 56. The network of claim 55, wherein each of the plurality of one or more optical nodes includes an add drop multiplexer.
- 57. The network of claim 55, wherein each of the plurality of one or more optical anti-feedback nodes includes an add drop multiplexer.
- 58. The network of claim 55, wherein the plurality of one or more optical nodes includes at least two optical nodes, and the plurality of one or more optical nodes includes a plurality of one or more optical fiber segments coupling the at least two optical nodes.
- 59. The network of claim 55, wherein the plurality of one or more optical anti-crosstalk nodes includes at least two optical anti-crosstalk nodes, and the plurality of one or more optical anti-feedback nodes includes a plurality of one or more optical waveguides coupling the at least two optical anti-crosstalk nodes.
- 60. The network of claim 59, wherein the plurality of one or more optical waveguides includes one or more optical fiber segments.
- 61. The network of claim 55, wherein at least one node of the plurality of one or more optical anti-crosstalk nodes prevents coherent crosstalk in the optical network by breaking an optical ring, the optical ring including the first optical fiber segment, the second optical fiber segment, and the plurality of one or more optical nodes.
- 62. The network of claim 61, wherein at least one node of the plurality of one or more optical anti-crosstalk nodes breaks the optical ring at the optical node at least between the first end of the first optical fiber segment and the first end of the second optical fiber segment.
- 63. The network of claim 55, wherein at least one node of the plurality of one or more optical anti-crosstalk nodes includes:
a wavelength add; a wavelength drop; a first optical port at least optically coupled to the wavelength add; and a second optical port at least optically coupled to the wavelength drop.
- 64. The network of claim 63, wherein the wavelength add adds a single wavelength.
- 65. The network of claim 63, wherein the wavelength drop drops a single wavelength.
- 66. The network of claim 63, wherein the wavelength add adds multiple wavelengths.
- 67. The network of claim 63, wherein the wavelength drop drops multiple wavelengths.
- 68. The network of claim 63, wherein at least one node of the plurality of one or more optical anti-crosstalk nodes further includes:
a third optical port at least optically coupled to the wavelength add; and a fourth optical port at least optically coupled to the wavelength drop.
- 69. The network of claim 55, wherein at least one node of the plurality of one or more optical nodes includes:
a wavelength add; a wavelength drop; a first optical port at least optically coupled to the wavelength add; and a second optical port at least optically coupled to the wavelength drop.
- 70. The network of claim 69, wherein the wavelength add adds a single wavelength.
- 71. The network of claim 69, wherein the wavelength drop drops a single wavelength.
- 72. The network of claim 69, wherein the wavelength add adds multiple wavelengths.
- 73. The network of claim 69, wherein the wavelength drop drops multiple wavelengths.
- 74. The network of claim 69, wherein at least one node of the plurality of one or more optical nodes further includes:
a third optical port at least optically coupled to the wavelength add; and a fourth optical port at least optically coupled to the wavelength drop.
- 75. The network of claim 74, wherein the third optical port and the fourth optical port are at least optically coupled with at least an optical waveguide.
- 76. The network of claim 75, wherein the optical waveguide includes one or more optical fiber segments.
- 77. The network of claim 55, wherein each node of the plurality of one or more optical anti-crosstalk nodes is associated with a logical ring of the optical network.
- 78. The network of claim 55, wherein the optical network is adapted to carry out protection switching.
- 79. The network of claim 55, wherein available bandwidth of the optical network is increased by adding one or more optical anti-crosstalk nodes to the plurality of one or more optical anti-crosstalk nodes.
- 80. The network of claim 79, wherein traffic in the optical network is not disrupted by adding one or more optical anti-crosstalk nodes to the plurality of one or more optical anti-crosstalk nodes.
- 81. The network of claim 79, wherein the plurality of one or more optical anti-crosstalk nodes and the added one or more optical anti-crosstalk nodes are located together.
- 82. The network of claim 79, wherein manual modification of the plurality of one or more optical nodes is unnecessary to increasing the available bandwidth.
- 83. An optical node, comprising:
one or more housings at least substantially enclosing:
a wavelength add; a wavelength drop; a first optical port adapted to at least optically couple to a first node of a plurality of one or more optical nodes, the first optical port at least optically coupled to the wavelength add; and a second optical port adapted to at least optically couple to a second node of the plurality of one or more optical nodes, the second optical port at least optically coupled to the wavelength drop, and the plurality of one or more optical nodes includes one or more optically transparent nodes being optically transparent for one or more optical wavelengths at least optically traversing the one or more optically transparent nodes, the one or more optically transparent nodes being optically transparent in at least one direction, wherein the first optical port and the second optical port remain at least optically substantially decoupled within the optical node at one or more optical wavelengths that carry traffic in at least part of the plurality of one or more optical nodes.
- 84. The node of claim 83, wherein the wavelength add includes a directional coupler.
- 85. The node of claim 83, wherein the wavelength drop includes a drop filter.
- 86. The node of claim 83, wherein the wavelength add adds a single wavelength.
- 87. The node of claim 83, wherein the wavelength drop drops a single wavelength.
- 88. The node of claim 83, wherein the wavelength add adds multiple wavelengths.
- 89. The node of claim 83, wherein the wavelength drop drops multiple wavelengths.
- 90. The node of claim 83, wherein the one or more housings at least substantially further encloses:
a third optical port at least optically coupled to the wavelength add; and a fourth optical port at least optically coupled to the wavelength drop.
- 91. An optical node, comprising:
one or more housings at least substantially enclosing:
a wavelength add; a wavelength drop; a first optical port adapted to at least optically couple to a first node of a plurality of one or more optical nodes, the first optical port at least optically coupled to the wavelength add; and a second optical port adapted to at least optically couple to a second node of the plurality of one or more optical nodes, the second optical port at least optically coupled to the wavelength drop, and the plurality of one or more optical nodes includes one or more optically transparent nodes being optically transparent for one or more optical wavelengths at least optically traversing the one or more optically transparent nodes, the one or more optically transparent nodes being optically transparent in at least one direction, wherein the optical node substantially prevents optical feedback in the plurality of one or more optical nodes.
- 92. The node of claim 91, wherein the wavelength add includes a directional coupler.
- 93. The node of claim 91, wherein the wavelength drop includes a drop filter.
- 94. The node of claim 91, wherein the wavelength add adds a single wavelength.
- 95. The node of claim 91, wherein the wavelength drop drops a single wavelength.
- 96. The node of claim 91, wherein the wavelength add adds multiple wavelengths.
- 97. The node of claim 91, wherein the wavelength drop drops multiple wavelengths.
- 98. The node of claim 91, wherein the one or more housings at least substantially further encloses:
a third optical port at least optically coupled to the wavelength add; and a fourth optical port at least optically coupled to the wavelength drop.
- 99. An optical node, comprising:
one or more housings at least substantially enclosing:
a wavelength add; a wavelength drop; a first optical port adapted to at least optically couple to a first node of a plurality of one or more optical nodes, the first optical port at least optically coupled to the wavelength add; and a second optical port adapted to at least optically couple to a second node of the plurality of one or more optical nodes, the second optical port at least optically coupled to the wavelength drop, and the plurality of one or more optical nodes includes one or more optically transparent nodes being optically transparent for one or more optical wavelengths at least optically traversing the one or more optically transparent nodes, the one or more optically transparent nodes being optically transparent in at least one direction, wherein the optical node substantially prevents coherent crosstalk in the plurality of one or more optical nodes.
- 100. The node of claim 99, wherein the wavelength add includes a directional coupler.
- 101. The node of claim 99, wherein the wavelength drop includes a drop filter.
- 102. The node of claim 99, wherein the wavelength add adds a single wavelength.
- 103. The node of claim 99, wherein the wavelength drop drops a single wavelength.
- 104. The node of claim 99, wherein the wavelength add adds multiple wavelengths.
- 105. The node of claim 99, wherein the wavelength drop drops multiple wavelengths.
- 106. The node of claim 99, wherein the one or more housings at least substantially further encloses:
a third optical port at least optically coupled to the wavelength add; and a fourth optical port at least optically coupled to the wavelength drop.
- 107. A method of optical networking, comprising:
adding a first plurality of one or more optical signals to an optically transparent optical ring carrying wavelength division multiplexed signals; dropping a second plurality of one or more optical signals from the optically transparent optical ring; and breaking the optically transparent optical ring.
- 108. The method of claim 107, further comprising:
responsive to communication impairment, protection switching.
- 109. The method of claim 108, wherein the communication impairment includes a fiber break.
- 110. The method of claim 107, further comprising:
adding available bandwidth to the optically transparent optical ring without disrupting traffic in already present bandwidth in the optically transparent optical ring.
- 111. A method of optical networking, comprising:
performing at least one of: 1) adding one or more optical signals to an optically transparent optical ring, and 2) dropping one or more optical signals from the optically transparent optical ring; and substantially preventing optical feedback in the optically transparent optical ring.
- 112. The method of claim 111, further comprising:
responsive to communication impairment, protection switching.
- 113. The method of claim 112, wherein the communication impairment includes a fiber break.
- 114. The method of claim 111, further comprising:
adding available bandwidth to the optically transparent optical ring without disrupting traffic in already present bandwidth in the optically transparent optical ring.
- 115. A method of optical networking, comprising:
performing at least one of:
1) adding one or more optical signals to an optically transparent optical ring, and 2) dropping one or more optical signals from the optically transparent optical ring; and substantially preventing coherent crosstalk in the optically transparent optical ring.
- 116. The method of claim 115, further comprising:
responsive to communication impairment, protection switching.
- 117. The method of claim 116, wherein the communication impairment includes a fiber break.
- 118. The method of claim 115, further comprising:
adding available bandwidth to the optically transparent optical ring without disrupting traffic in already present bandwidth in the optically transparent optical ring.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of the U.S. Provisional Patent Application No. 60/280,347 filed Mar. 29, 2001, which is incorporated by reference herein its entirety. Additionally this application is related to co-pending U.S. patent application No. ______, filed Mar. 29, 2002, concurrently herewith entitled “Methods and Apparatus for Reconfigurable WDM Lightpath Rings” claiming the benefit of the U.S. Provisional Patent Application No. 60/280,550, filed Mar. 29, 2001 which are incorporated by reference herein in their entirety.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60280347 |
Mar 2001 |
US |
|
60280550 |
Mar 2001 |
US |