IP Library Granted Patent US 11,309,968
Granted Patent B2
US 11,309,968 · App. 17/231,038 · Granted Apr 19, 2022

Optical transmission device and optical transmission method

Inventors: Anh Ha Ngo (Kawasaki, JP); Takafumi Terahara (Kawasaki, JP); Naoki Ainaka (Kawasaki, JP); Hisao Nakashima (Kawasaki, JP)
Assignee: FUJITSU LIMITED
H04B10/40H04B10/25H04J14/0201
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Quick Facts
Patent No.
US 11,309,968
App. No.
17/231,038
Granted
Apr 19, 2022
Kind
B2
Abstract

Optical transmission device is provided in one of a plurality of nodes in an optical network. Different carrier frequencies are respectively allocated to the plurality of nodes. The optical transmission device includes: transmitter, splitter and receiver. The transmitter generates a first subcarrier optical signal with a first subcarrier established on a low-frequency side of a first carrier frequency and a second subcarrier optical signal with a second subcarrier established on a high-frequency side of the first carrier frequency. The splitter splits an optical signal including the first subcarrier optical signal and the second subcarrier optical signal. The output of the splitter is guided to first and second adjacent nodes. The receiver recovers data carried by the first subcarrier and data carried by the second subcarrier from received optical signal. A difference between carrier frequencies of adjacent nodes corresponds to a bandwidth of the subcarrier.

Claims (30)

1. An optical transmission device provided in a first node among a plurality of nodes included in an optical network, different carrier frequencies being respectively allocated to the plurality of nodes, the optical transmission device comprising:

a first light source configured to generate local oscillation light of a first carrier frequency that is allocated to the first node;

a transmitter configured to generate, by using the local oscillation light, a first subcarrier optical signal with a first subcarrier established on a low-frequency side of the first carrier frequency and a second subcarrier optical signal with a second subcarrier established on a high-frequency side of the first carrier frequency;

an optical splitter configured to split an optical signal including the first subcarrier optical signal and the second subcarrier optical signal to generate a first optical signal to be transmitted to a first adjacent node and a second optical signal to be transmitted to a second adjacent node;

an optical coupler configured to combine an optical signal received from the first adjacent node and an optical signal received from the second adjacent node; and

a receiver configured to recover, by using the local oscillation light, a first reception signal carried by the first subcarrier and a second reception signal carried by the second subcarrier from an output optical signal of the optical coupler, wherein

a difference between a frequency of the first light source and a frequency of a light source implemented in the first adjacent node corresponds to a bandwidth of the first subcarrier.

2. The optical transmission device according to claim 1 , wherein

a difference between the first carrier frequency and a carrier frequency allocated to the first adjacent node is the same as the bandwidth of the first subcarrier, and a difference between the first carrier frequency and a carrier frequency allocated to the second adjacent node is the same as a bandwidth of the second subcarrier.

3. The optical transmission device according to claim 1 , wherein

the bandwidth of the first subcarrier and a bandwidth of the second subcarrier are the same, and

the first subcarrier is established on the low-frequency side of the first carrier frequency and adjacent to the first carrier frequency, and the second subcarrier is established on the high-frequency side of the first carrier frequency and adjacent to the first carrier frequency.

4. The optical transmission device according to claim 3 , wherein

the bandwidth of the first subcarrier and the bandwidth of the second subcarrier are each half of a maximum communication bandwidth of an optical transceiver that includes the transmitter and the receiver.

5. An optical transmission device provided in a first node among a plurality of nodes included in an optical network, the optical transmission device comprising:

a transmitter configured to generate a first subcarrier optical signal by using a first subcarrier established on a low-frequency side of a specified carrier frequency and generate a second subcarrier optical signal by using a second subcarrier established on a high-frequency side of the carrier frequency;

an optical filter configured to extract the first subcarrier optical signal from output light of the transmitter and guide the extracted first subcarrier optical signal to a first adjacent node and extract the second subcarrier optical signal from the output light of the transmitter and guide the extracted second subcarrier optical signal to a second adjacent node;

an optical coupler configured to combine an optical signal received from the first adjacent node and an optical signal received from the second adjacent node; and

a receiver configured to recover a first reception signal carried by the first subcarrier and a second reception signal carried by the second subcarrier from an output optical signal of the optical coupler.

6. The optical transmission device according to claim 5 , wherein

the first reception signal includes data transmitted from the first adjacent node, and the second reception signal includes data transmitted front the second adjacent node.

7. The optical transmission device according to claim 5 , wherein

the first reception signal includes data transmitted from the second adjacent node, and the second reception signal includes data transmitted from the first adjacent node.

8. An optical transmission method that is used by an optical transmission device provided in a first node among a plurality of nodes included in an optical network, different carrier frequencies being respectively allocated to the plurality of nodes, the optical transmission method comprising:

outputting, by using a first light source for generating local oscillation light of a first carrier frequency allocated to the first node, a transmission optical signal that includes a first subcarrier optical signal with a first subcarrier established on a low-frequency side of the first carrier frequency and a second subcarrier optical signal with a second subcarrier established on a high-frequency side of the first carrier frequency;

splitting the transmission optical signal by using an optical splitter so as to generate a first optical signal and a second optical signal;

transmitting the first optical signal and the second optical signal respectively to a first adjacent node and a second adjacent node;

combining an optical signal received from the first adjacent node and an optical signal received from the second adjacent node by using an optical coupler; and

recovering, by using the first light source, a first reception signal carried by the first subcarrier and a second reception signal carried by the second subcarrier from an output optical signal of the optical coupler, wherein

a difference between a frequency of the first light source and a frequency of a light source implemented in the first adjacent node corresponds to a bandwidth of the first subcarrier.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 13, 2025
From: FUJITSU LIMITED
To: 1FINITY INC.
Reel/Frame 072432/0779 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 15, 2021
From: NGO, ANH HA; TERAHARA, TAKAFUMI; AINAKA, NAOKI; NAKASHIMA, HISAO
To: FUJITSU LIMITED
Reel/Frame 055927/0040 →
Priority Claims (1)
JP JP2020-116247 · Jul 6, 2020 · national
Continuity (1)
Related Publication 20220006530A1 · Jan 6, 2022