IP Library Granted Patent US 11,689,308
Granted Patent B2
US 11,689,308 · App. 17/653,806 · Granted Jun 27, 2023

Optical communications module link extender, and related systems and methods

Inventor: Harjinder S. Ghuman (Alpharetta, GA)
Assignee: COX COMMUNICATIONS, INC.
H04J14/02H04Q11/0005H04B10/61H04J14/0242H04J14/0287
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Quick Facts
Patent No.
US 11,689,308
App. No.
17/653,806
Granted
Jun 27, 2023
Kind
B2
Abstract

This disclosure describes devices and methods related to multiplexing optical data signals. A method may be disclosed. The method may comprise receiving, by a dense wave division multiplexer (DWDM), one or more optical data signals. The method may comprise combining, by the DWDM, the one or more optical data signals. The method may comprise outputting, by the DWDM, the combined one or more optical data signals to a first circulator. The method may also comprise combining, by the WDM, the second optical data signal and one or more third signals, and outputting an egress optical data signal to an optical switch. The method may also comprise outputting, by the optical switch, the egress optical data signal on a primary fiber.

Claims (50)

1. A cable network system comprising:

a master terminal center (MTC) comprising:

a first optical communications module link extender (OCML) system, the first OCML system comprising:

a first dense wave division multiplexer (DWDM) that is configured to receive one or more first optical data signals at a first input of the first OCML system, combine the one or more first optical data signals, and output a second optical data signal;

a first wave division multiplexer (WDM) that is configured to receive the second optical data signal from the first DWDM and one or more passive optical network (PON) signals from a second input of the first OCML system, and is further configured to output a third optical data signal;

a first coherent transport platform and a second coherent transport platform, wherein the first OCML system is further configured to receive a first coherent data signal from the first coherent transport platform, wherein a second OCML system is configured to receive a second coherent data signal from the second coherent transport platform, wherein the first coherent transport platform and the second coherent transport platform are configured to receive the first coherent data signal and the second coherent data signal from a device at the MTC; and

a secondary transport center (STC) located downstream in the cable network system from the MTC and comprising a third OCML system; and

an outside plant located downstream in the cable network system from the STC and comprising a

multiplexer-demultiplexer (MDM) that is configured to receive a fourth optical data signal from the third OCML system.

2. The cable network system of claim 1 , wherein the one or more first optical data signals include one or more Ethernet signals, and wherein the first WDM is further configured to:

receive an upstream data signal including a combined Ethernet signal and one or more PON signals;

output the combined Ethernet signals at a first output; and

output the one or more PON signals at a second output.

3. The system of claim 1 , wherein the secondary transport center (STC) further comprises a switch.

4. The system of claim 1 , wherein the first OCML system and second OCML system further comprise:

a tunable dispersion compensation module (DCM) configured to:

receive the second optical data signal from the DWDM and remove interference between adjacent symbols in the second optical data signal; and

output a fifth optical data signal.

5. The system of claim 4 , wherein the tunable DCM is tuned to a signal transmission distance.

6. The system of claim 5 , further comprising:

a booster optical amplifier communicatively coupled to the tunable DCM, the booster optical amplifier being configured to receive the fifth optical data signal, amplify the fifth optical data signal, and output a sixth optical data signal.

7. The system of claim 6 , wherein the booster optical amplifier is an erbium-doped fiber amplifier (EDFA) or a semiconductor optical amplifier (SOA).

8. The system of claim 6 , wherein the first WDM is further configured to receive the sixth optical data signal from the booster optical amplifier and output a seventh optical data signal.

9. The system of claim 8 , further comprising:

a variable optical amplifier (VOA) configured to receive the seventh optical data signal from the booster optical amplifier, adjust a power of the seventh optical data signal to a first level, and output an eighth optical data signal.

10. A method for transmitting one or more optical data signals along a cable network, the method comprising:

receiving, by a first optical communications module link extender (OCML) system at a master terminal center (MTC), one or more first optical data signals, wherein the first OCML system comprises a first dense wave division multiplexer (DWDM) that is configured to receive the one or more first optical data signals at a first input, combine the one or more first optical data signals, and output a second optical data signal,

wherein the first OCML system further comprises a first wave division multiplexer (WDM) that is configured to receive the second optical data signal from the first DWDM and one or more passive optical network (PON) signals from a second input of the first OCML system, and is further configured to output a third optical data signal;

receiving, by the first OCML system and from a first coherent transport platform at the MTC, a first coherent data signal;

receiving, by a second OCML system and from a second coherent transport platform at the MTC, a second coherent data signal, wherein the first coherent transport platform and the second coherent transport platform are configured to receive the first coherent data signal and the second coherent data signal from a device at the MTC;

sending by the first OCML system, a third optical data signal to a third OCML system at a secondary transport center (STC) located downstream in the cable network from the MTC; and

sending a fourth optical data signal to an outside plant located downstream in the cable network from the MTC, the outside plant including a multiplexer-demultiplexer (MDM), wherein the master terminal center (MTC) further comprises a first coherent transport platform.

11. The method of claim 10 , wherein the first OCML system and the second OCML system comprise:

a tunable dispersion compensation module (DCM) configured to receive the second optical data signal, remove interference between adjacent symbols in the second optical data signal, and output a fifth optical data signal;

a booster optical amplifier configured to receive the fifth optical data signal, amplify the fifth optical data signal, and output a sixth optical data signal;

a second WDM configured to receive the sixth optical data signal and output a seventh optical data signal; and

a variable optical amplifier (VOA) configured to receive the seventh optical data signal, adjust a power of the seventh optical data signal to a first level, and output an eighth optical data signal.

12. A cable network system comprising:

a master terminal center (MTC) comprising a first optical communications module link extender (OCML) system; and

a secondary transport center (STC) located downstream in the cable network system from the MTC and comprising a second OCML system in communication with the first OCML system, wherein the first OCML system and second OCML system comprise:

a dense wave division multiplexer (DWDM) that is configured to receive one or more optical data signals at a first input of the first OCML system or the second OCML system, combine the one or more optical data signals, and output a combined optical data signal;

a first circulator communicatively coupled to the DWDM, the first circulator being configured to receive the combined optical data signal from the DWDM and one or more passive optical network (PON) signals received from a second input of the first OCML system or the second OCML system and output the combined optical data signal and the one or more PON signals, wherein the master terminal center (MTC) further comprises a first coherent transport platform and a second coherent transport platform, wherein the first OCML system is further configured to receive a first coherent data signal from the first coherent transport platform, wherein a third OCML system is configured to receive a second coherent data signal from the second coherent transport platform, wherein the first coherent transport platform and the second coherent transport platform are configured to receive the first coherent data signal and the second coherent data signal from a device at the MTC;

an optical switch that receives the combined optical data signal and one or more PON signals and outputs the combined optical data signal and one or more PON signals to a first fiber; and

an outside plant located downstream in the cable network system from the STC and comprising a multiplexer-demultiplexer (MDM) that is configured to receive the combined optical data signal and one or more PON signals.

13. The cable network system of claim 12 , wherein the secondary transport center (STC) further comprises a fourth OCML system.

14. The cable network system of claim 12 , wherein the secondary transport center (STC) further comprises a switch.

15. The cable network system of claim 12 , wherein the first OCML system and second OCML system further comprise:

a tunable dispersion compensation module (DCM) configured to:

receive the combined optical data signal from the DWDM and remove interference between adjacent symbols in the combined optical data signal; and

output a second optical data signal.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 8, 2023
From: GHUMAN, HARJINDER S.
To: COX COMMUNICATIONS, INC.
Reel/Frame 062919/0824 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 7, 2022
From: GHUMAN, HARJINDER S.
To: COX COMMUNICATIONS, INC.
Reel/Frame 059188/0649 →
Continuity (2)
Continuation In Part 16814859 · Mar 10, 2020
Related Publication 20220376810A1 · Nov 24, 2022