IP Library Granted Patent US 12671495
Granted Patent B2
US 12671495 · App. 18/425,989 · Granted Jun 30, 2026

Optical communication system, vehicle, and industrial optical network

Inventors: Xin Zhang (Dongguan, CN); Yanbo Li (Dongguan, CN); Tianhai Chang (Dongguan, CN)
Assignee: Huawei Technologies Co., Ltd.
H04B10/032H04B10/038
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Quick Facts
Patent No.
US 12671495
App. No.
18/425,989
Granted
Jun 30, 2026
Kind
B2
Abstract

This application provides an optical communication system, a vehicle, and an industrial optical network, and relates to the field of optical communications. A light source module in the optical communication system can be connected to a group of first nodes separately through two carrier bearer networks. Therefore, even if either carrier bearer network is faulty, the other carrier bearer network can continue to transmit an optical carrier, thereby effectively improving reliability of optical carrier transmission, and further improving reliability of the optical communication system. In addition, because the two carrier bearer networks are independent of each other and can work simultaneously, after either carrier bearer network is faulty, no failover is needed. This can avoid interrupted transmission of the optical carrier caused by the failover, and further avoid interrupted transmission of a service optical signal.

Claims (58)

1 . An optical communication system, wherein the optical communication system comprises a light source, a first carrier bearer network, a second carrier bearer network, a group of first nodes, a first service bearer network, and a group of second nodes, wherein the first carrier bearer network and the second carrier bearer network provide backup for each other;

the light source is connected to the group of first nodes separately through the first carrier bearer network and the second carrier bearer network, and the light source is configured to transmit an optical carrier to the group of first nodes separately through the first carrier bearer network and the second carrier bearer network; and

the group of first nodes is connected to the group of second nodes through the first service bearer network, and each first node is configured to modulate the optical carrier based on a service electrical signal to obtain a service optical signal, and transmit the service optical signal to at least one of the group of second nodes through the first service bearer network,

wherein the light source comprises a first light source and a second light source that provide backup for each other, and

the first light source is connected to the group of first nodes through the first carrier bearer network; and

the second light source is connected to the group of first nodes through the second carrier bearer network.

2 . The optical communication system according to claim 1 , wherein both the first light source and the second light source are single-wavelength light sources or wide-spectrum light sources, and the light source further comprises a first splitter and a second splitter, and

the first light source is connected to the first carrier bearer network through the first splitter, and the first splitter is configured to split an optical carrier provided by the first light source, and transmit a split optical carrier to each first node separately through the first carrier bearer network; and

the second light source is connected to the second carrier bearer network through the second splitter, and the second splitter is configured to split an optical carrier provided by the second light source, and transmit a split optical carrier to each first node separately through the second carrier bearer network.

3 . The optical communication system according to claim 1 , wherein both the first light source and the second light source are multi-wavelength light sources;

the first light source is configured to output a plurality of single-wavelength optical carriers in parallel to the first carrier bearer network; and

the second light source is configured to output a plurality of single-wavelength optical carriers in parallel to the second carrier bearer network.

4 . The optical communication system according to claim 1 , wherein each first node comprises a first optical path coupler and an electro-optic modulator, and

the first optical path coupler is separately connected to the first carrier bearer network, the second carrier bearer network, and the electro-optic modulator, and the first optical path coupler is configured to couple an optical carrier transmitted by the first carrier bearer network and an optical carrier transmitted by the second carrier bearer network, and transmit a coupled optical carrier to the electro-optic modulator; and

the electro-optic modulator is connected to the first service bearer network, and the electro-optic modulator is configured to modulate, based on the service electrical signal, an optical carrier transmitted by the first optical path coupler, to obtain the service optical signal, and transmit the service optical signal to at least one of the group of second nodes through the first service bearer network.

5 . The optical communication system according to claim 1 , wherein the optical communication system further comprises a second service bearer network, and the second service bearer network and the first service bearer network provide backup for each other; and

the group of first nodes is further connected to the group of second nodes through the second service bearer network, and each first node is further configured to transmit the service optical signal to at least one of the group of second nodes through the second service bearer network.

6 . The optical communication system according to claim 5 , wherein each first node comprises a first optical path coupler, an electro-optic modulator, and an optical path decoupler, and

the first optical path coupler is separately connected to the first carrier bearer network, the second carrier bearer network, and the electro-optic modulator, and the first optical path coupler is configured to couple an optical carrier transmitted by the first carrier bearer network and an optical carrier transmitted by the second carrier bearer network, and transmit a coupled optical carrier to the electro-optic modulator;

the electro-optic modulator is connected to the optical path decoupler, and the electro-optic modulator is configured to modulate, based on the service electrical signal, an optical carrier transmitted by the first optical path coupler, to obtain the service optical signal, and transmit the service optical signal to the optical path decoupler; and

the optical path decoupler is further separately connected to the first service bearer network and the second service bearer network, and the optical path decoupler is configured to decouple the service optical signal, and transmit a decoupled service optical signal to at least one of the group of second nodes separately through the first service bearer network and the second service bearer network.

7 . The optical communication system according to claim 5 , wherein each first node comprises a first electro-optic modulator and a second electro-optic modulator that provide backup for each other, and

the first electro-optic modulator is separately connected to the first carrier bearer network and the first service bearer network, and the first electro-optic modulator is configured to modulate, based on the service electrical signal, an optical carrier transmitted by the first carrier bearer network, to obtain a modulated service optical signal, and transmit the modulated service optical signal to at least one of the group of second nodes through the first service bearer network; and

the second electro-optic modulator is separately connected to the second carrier bearer network and the second service bearer network, and the second electro-optic modulator is configured to modulate, based on the service electrical signal, an optical carrier transmitted by the second carrier bearer network, to obtain a modulated service optical signal, and transmit the modulated service optical signal to at least one of the group of second nodes through the second service bearer network.

8 . The optical communication system according to claim 5 , wherein each second node comprises a second optical path coupler and a photoelectric receiver, and

the second optical path coupler is separately connected to the first service bearer network, the second service bearer network, and the photoelectric receiver, and the second optical path coupler is configured to couple a service optical signal transmitted by the first service bearer network and a service optical signal transmitted by the second service bearer network, and transmit a coupled service optical signal to the photoelectric receiver; and

the photoelectric receiver is configured to demodulate the coupled service optical signal transmitted by the second optical path coupler.

9 . The optical communication system according to claim 5 , wherein each second node comprises a first photoelectric receiver and a second photoelectric receiver that provide backup for each other, and

the first photoelectric receiver is connected to the first service bearer network, and the first photoelectric receiver is configured to demodulate a first service optical signal transmitted by the first service bearer network; and

the second photoelectric receiver is connected to the second service bearer network, and the second photoelectric receiver is configured to demodulate a second service optical signal transmitted by the second service bearer network.

10 . The optical communication system according to claim 1 , wherein the first service bearer network is a star network.

11 . The optical communication system according to claim 10 , wherein the first service bearer network comprises a first optical waveguide, a service distributer, and a second optical waveguide, and

both the first optical waveguide and the second optical waveguide are separately connected to the group of first nodes, the group of second nodes, and the service distributer; and

the service distributer is configured to receive a service optical signal from at least one node of the group of first nodes and the group of second nodes through the first optical waveguide, couple the received service optical signal, split the coupled service optical signal, and transmit the split service optical signal to the group of first nodes and the group of second nodes separately through the second optical waveguide.

12 . The optical communication system according to claim 11 , wherein the service distributer is a star coupler, or the service distributer comprises an arrayed waveguide grating (AWG) and a third splitter, and one end of the AWG is connected to the first optical waveguide, the other end of the AWG is connected to an input end of the third splitter, and an output end of the third splitter is connected to the second optical waveguide.

13 . A vehicle, wherein the vehicle comprises a vehicle-mounted controller, a vehicle-mounted sensor, a vehicle-mounted actuator, and an optical communication system; wherein the optical communication system comprises a light source, a first carrier bearer network, a second carrier bearer network, a group of first nodes, a first service bearer network, and a group of second nodes, wherein the first carrier bearer network and the second carrier bearer network provide backup for each other;

the light source is connected to the group of first nodes separately through the first carrier bearer network and the second carrier bearer network, and the light source is configured to transmit an optical carrier to the group of first nodes separately through the first carrier bearer network and the second carrier bearer network; and

the group of first nodes is connected to the group of second nodes through the first service bearer network, and each first node is configured to modulate the optical carrier based on a service electrical signal to obtain a service optical signal, and transmit the service optical signal to at least one of the group of second nodes through the first service bearer network, and

the vehicle-mounted sensor is connected to one or more of the group of first nodes in the optical communication system, and is configured to provide the service electrical signal for the one or more of the group of first nodes, and the vehicle-mounted controller is connected to one or more of the group of second nodes in the optical communication system, and is configured to receive a service electrical signal transmitted by the one or more of the group of second nodes; or

the vehicle-mounted controller is connected to the one or more of the group of first nodes in the optical communication system, and is configured to provide the service electrical signal for the one or more of the group of first nodes, and the vehicle-mounted actuator is connected to the one or more of the group of second nodes in the optical communication system, and is configured to receive a service electrical signal transmitted by the one or more of the group of second nodes, wherein the light source comprises a first light source and a second light source that provide backup for each other, and

the first light source is connected to the group of first nodes through the first carrier bearer network; and

the second light source is connected to the group of first nodes through the second carrier bearer network.

14 . The vehicle according to claim 13 , wherein both the first light source and the second light source are single-wavelength light sources or wide-spectrum light sources, and the light source further comprises a first splitter and a second splitter, and

the first light source is connected to the first carrier bearer network through the first splitter, and the first splitter is configured to split an optical carrier provided by the first light source, and transmit a split optical carrier to each first node separately through the first carrier bearer network; and

the second light source is connected to the second carrier bearer network through the second splitter, and the second splitter is configured to split an optical carrier provided by the second light source, and transmit a split optical carrier to each first node separately through the second carrier bearer network.

15 . The vehicle according to claim 13 , wherein both the first light source and the second light source are multi-wavelength light sources;

the first light source is configured to output a plurality of single-wavelength optical carriers in parallel to the first carrier bearer network; and

the second light source is configured to output a plurality of single-wavelength optical carriers in parallel to the second carrier bearer network.

16 . An industrial optical network, wherein the industrial optical network comprises an industrial controller, an industrial sensor, an industrial actuator, and the optical communication system; wherein the optical communication system comprises a light source, a first carrier bearer network, a second carrier bearer network, a group of first nodes, a first service bearer network, and a group of second nodes, wherein the first carrier bearer network and the second carrier bearer network provide backup for each other;

the light source is connected to the group of first nodes separately through the first carrier bearer network and the second carrier bearer network, and the light source is configured to transmit an optical carrier to the group of first nodes separately through the first carrier bearer network and the second carrier bearer network; and

the group of first nodes is connected to the group of second nodes through the first service bearer network, and each first node is configured to modulate the optical carrier based on a service electrical signal to obtain a service optical signal, and transmit the service optical signal to at least one of the group of second nodes through the first service bearer network, and

the industrial sensor is connected to one or more of the group of first nodes in the optical communication system, and is configured to provide the service electrical signal for the one or more of the group of first nodes, and the industrial controller is connected to one or more of the group of second nodes in the optical communication system, and is configured to receive a service electrical signal transmitted by the one or more of the group of second nodes; or

the industrial controller is connected to the one or more of the group of first nodes in the optical communication system, and is configured to provide the service electrical signal for the one or more of the group of first nodes, and the industrial actuator is connected to the one or more of the group of second nodes in the optical communication system, and is configured to receive a service electrical signal transmitted by the one or more of the group of second nodes, wherein the light source comprises a first light source and a second light source that provide backup for each other, and

the first light source is connected to the group of first nodes through the first carrier bearer network; and

wherein the second light source is connected to the group of first nodes through the second carrier bearer network.

17 . The industrial optical network according to claim 16 , wherein both the first light source and the second light source are single-wavelength light sources or wide-spectrum light sources, and the light source further comprises a first splitter and a second splitter, and

the first light source is connected to the first carrier bearer network through the first splitter, and the first splitter is configured to split an optical carrier provided by the first light source, and transmit a split optical carrier to each first node separately through the first carrier bearer network; and

the second light source is connected to the second carrier bearer network through the second splitter, and the second splitter is configured to split an optical carrier provided by the second light source, and transmit a split optical carrier to each first node separately through the second carrier bearer network.