Claims
- 1. An all optical network for optical signal traffic, comprising:
a first ring with least one transmitter and one receiver, the first ring including a plurality of network nodes; and at least a first add/drop broadband coupler coupled to the first ring, the broadband coupler including an add port and a drop port to add and drop wavelengths to and or from the first ring, a pass-through direction and an add/drop direction, the first add/drop broadband coupler being configured to minimize a pass-through loss in the first ring, the broadband coupler being positioned on the first ring.
- 2. The network of claim 1, wherein the first add/drop broadband coupler includes a booster configured to compensate for add/drop loss on the first ring.
- 3. The network of claim 1, wherein the first add/drop broadband coupler includes a pre-amplifier configured to compensate for add/drop loss on the first ring.
- 4. The network of claim 1, wherein the first add/drop broadband coupler includes an in-amplifier configured to compensate for add/drop loss on the first ring.
- 5. The network of claim 1, wherein the first ring includes a plurality of nodes.
- 6. The network of claim 4, wherein the a number of the plurality of nodes is in the range of 3 to 20 nodes
- 7. The network of claim 1, wherein the first ring has a circumference in the range of 5 to 1000 km.
- 8. The network of claim 1, wherein the network is a passive optical network without in-line optical amplifiers.
- 9. The network of claim 1, wherein the broadband coupler includes at least a first 1×2 coupler to add traffic and a second 1×2 coupler to drop traffic.
- 10. The network of claim 1, wherein the network is a non-passive network with at least one in-line optical amplifier.
- 11. The all optical network of claim 10, wherein the first ring includes at least a first working fiber and a first protection fiber that carries all of the optical signal traffic, wherein optical signal traffic travels in a clockwise direction in the first working fiber and in a counter-clockwise direction in the first protection fiber.
- 12. The network of claim 10, further comprising:
at least one 1×1 or 1×2 switch coupled to the first working fiber, and at least one 1×1 or 1×2 switch coupled to the first protection fiber.
- 13. The all optical network of claim 12, wherein each 1×1 or 1×2 switch is maintained in an open position when there is no break point in the first ring, and each 1×1 or 1×2 switch is closed upon an occurrence of a break point in the first ring.
- 14. The network of claim 10, wherein an open 1×1 switch is maintained on the first ring to eliminate a fiber ring lasing phenomenon in response to gain provided by an in-line amplifier coupled to the first ring.
- 15. The network of claim 1, further comprising:
an all-optical hub that couples the first ring to at least a second ring.
- 16. The network of claim 15, wherein the all-optical hub separates optical signals in each ring into wavelength bands, wherein a number of wavelength bands is equal to a number of rings in the network that are coupled together.
- 17. The network of claim 16, wherein the all-optical hub includes at least one 1×N band-splitter and an N×1 coupler that couples optical signal traffic among rings coupled together on the network, wherein N is the number of rings coupled together.
- 18. The network of claim 17, wherein the 1×N band splitter launches optical traffic that originates from one ring to one or more different rings in response to its wavelength band.
- 19. The network of claim 18, wherein the N×1 coupler is configured to launch to any selected ring in the network the wavelength bands from the other rings in the network.
- 20. The network of claim 1, further comprising:
a loss pad that maintains at least 25 dB round-trip traveling loss around the first ring.
- 21. The network of claim 1, wherein the loss pad is configured to minimize coherent crosstalk from re-circulated signals.
- 22. The network of claims 1, further comprising:
at least a first and a second wavelength-dependent three-port add-drop filter coupled to each network node.
- 23. The network of claim 22, wherein the first wavelength-dependent three-port add-drop filter is configured to add signal traffic in an add direction; and the second wavelength-dependent three-port add-drop filter is configured to drop traffic in a drop direction.
- 24. The network of claim 23, wherein the first and second wavelength-dependent three-port add-drop filters are positioned off the first ring.
- 25. The network of claim 1, further comprising:
a first three-port add-drop filter coupled to the first ring in the add/drop direction, the first three-port add-drop filter including an input port and a drop port.
- 26. The network of claim 1, further comprising:
a plurality of wavelength-dependent three-port add-drop filters configured to be cascaded at each node for the drop direction to drop multiple wavelengths, and cascaded for the add direction to add multiple wavelengths.
- 27. The network of claim 26, wherein the plurality of wavelength-dependent three port add-drop filters are positioned off the first ring.
- 28. The network of claim 1, further comprising:
a least a first expansion module coupled to the first ring that adds and drops more than one wavelength.
- 29. The network of claim 28, wherein the first expansion module includes one or more cascaded three-port optical add/drop filters and a plurality of multiplexed transmitters for adding wavelengths.
- 30. The network of claim 28, wherein wavelengths added are different from wavelengths that are dropped.
- 31. The network of claim 28, wherein the first expansion module includes an array of parallel filters for dropping wavelengths, and an array of multiplexed transmitters for adding wavelengths.
- 32. The network of claim 31, wherein the wavelengths added are different from wavelengths that are dropped.
- 33. The network of claim 1, wherein the drop port includes a wavelength-dependent tunable filter.
- 34. The network of claim 33, wherein the tunable filter is configured to reflect non-selected wavelengths to a through port for one cascaded three-port optical add/drop filter to an adjacent cascaded three-port optical add/drop filter.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Ser. Nos. 60/229,784 filed Jun. 20, 2001, 60/301,564 filed Jun. 28, 2001, and 60/309,220 filed Jul. 31, 2001 and is also a continuation-in-part of U.S. Ser. No. 09/990,196 filed Nov. 21, 2001, and of Ser. No. 09/575,811 filed May 22, 2000, all of which applications are fully incorporated herein by reference.
Provisional Applications (3)
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Number |
Date |
Country |
|
60229784 |
Sep 2000 |
US |
|
60301564 |
Jun 2001 |
US |
|
60309220 |
Jul 2001 |
US |
Continuation in Parts (2)
|
Number |
Date |
Country |
| Parent |
09990196 |
Nov 2001 |
US |
| Child |
10178071 |
Jun 2002 |
US |
| Parent |
09575811 |
May 2000 |
US |
| Child |
10178071 |
Jun 2002 |
US |