Optical Communication Systems
The optical communication system uses bypass fibers to sense communication fibers without additional sensing cables, addressing the need for reduced cable length in long-distance communication systems.
Patent Information
- Application Number
- JP2025537859
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-12-27
- Publication Date
- 2025-12-01
- Estimated Expiration
- 2043-12-27
AI Technical Summary
In optical communication systems where a sensing optical fiber is required to sense the communication optical fiber, the longer the distance between communication devices, the longer the sensing optical fiber must be installed, leading to increased cable length requirements.
The system includes first and second optical fibers with bypass fibers to bypass optical amplifiers, allowing a sensor device to transmit sensor light and receive backscattered light without the need for a dedicated sensing optical fiber, using existing communication fibers.
Enables sensing of communication optical fibers without the need for additional sensing fibers, reducing cable length requirements and maintaining communication functionality.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to optical communication systems. [Background technology]
[0002] An optical communication system includes a communication optical fiber that transmits communication light transmitted from a communication device to a remote device, and a communication optical fiber that transmits communication light transmitted from the remote device to the communication device. Generally, an optical amplifier is inserted in each optical fiber, and therefore, the light transmission direction of each optical fiber is unidirectional. As such an optical communication system, for example, Patent Document 1 discloses an optical communication system in which, in addition to the optical fiber described above, a sensing optical fiber for carrying sensor light and backscattered light is wired between a communication device and a counterpart device. Since no optical amplifier is inserted in the sensing optical fiber, the light carrying direction of the sensing optical fiber is bidirectional. The optical communication system disclosed in Patent Document 1 includes a sensor device that sends sensor light to the sensing optical fiber, receives backscattered light of the sensor light returned from the sensing optical fiber, and senses the communication optical fiber based on the backscattered light. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] International Publication No. 2021-111699 Summary of the Invention [Problem to be solved by the invention]
[0004] In the optical communication system disclosed in Patent Document 1, in order for the sensor device to sense the communication optical fiber, a sensing optical fiber having the same length as the communication optical fiber must be installed. Therefore, the optical communication system has a problem in that the longer the distance between the communication device and the opposing device, the longer the cable length of the sensing optical fiber must be installed.
[0005] The present disclosure has been made to solve the above-mentioned problems, and aims to obtain an optical communication system that can sense a communication optical fiber without wiring a sensing optical fiber connecting a communication device and an opposing device. [Means for solving the problem]
[0006] The optical communication system according to the present disclosure includes a first optical fiber for propagating communication light transmitted from a communication device to an opposing device, a second optical fiber for propagating communication light transmitted from the opposing device to the communication device, a plurality of first bypass fibers for bypassing an optical amplifier inserted in the first optical fiber, and a plurality of second bypass fibers for bypassing an optical amplifier inserted in the second optical fiber. The optical communication system also includes a sensor device for transmitting sensor light to either the first optical fiber or the second optical fiber and receiving backscattered light returned from either the first optical fiber or the second optical fiber. [Effects of the Invention]
[0007] According to the present disclosure, it is possible to sense an optical fiber for communication without wiring an optical fiber for sensing that connects a communication device and a counterpart device. [Brief explanation of the drawings]
[0008] [Figure 1] 1 is a configuration diagram showing an optical communication system according to a first embodiment. [Figure 2] 1A and 1B are explanatory diagrams showing optical spectrum images of sensor light and backscattered light, respectively. [Figure 3] FIG. 10 is a configuration diagram showing an optical communication system according to a second embodiment. [Figure 4] 2 is an explanatory diagram showing wavelengths of communication light relating to N opposing devices 2-1 to 2-N. FIG. [Figure 5] FIG. 10 is a configuration diagram showing an optical communication system according to a third embodiment. [Figure 6] FIG. 10 is a configuration diagram showing an optical communication system according to a fourth embodiment. [Figure 7] FIG. 10 is a configuration diagram showing an optical communication system according to a fifth embodiment. [Figure 8] FIG. 13 is a configuration diagram showing an optical communication system according to a sixth embodiment. [Figure 9] FIG. 13 is a configuration diagram showing an optical communication system according to a seventh embodiment. [Figure 10] FIG. 13 is a configuration diagram showing a part of an optical communication system according to an eighth embodiment. [Figure 11] FIG. 13 is a configuration diagram showing a part of an optical communication system according to a ninth embodiment. [Figure 12] FIG. 22 is a configuration diagram showing a part of an optical communication system according to a tenth embodiment. [Figure 13] FIG. 22 is a configuration diagram showing an optical communication system according to an eleventh embodiment. [Figure 14] FIG. 23 is a configuration diagram showing another optical communication system according to the eleventh embodiment. [Figure 15] FIG. 22 is a configuration diagram showing an optical communication system according to a twelfth embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0009] In order to explain the present disclosure in more detail, embodiments of the present disclosure will be described below with reference to the accompanying drawings.
[0010] Embodiment 1 FIG. 1 is a configuration diagram showing an optical communication system according to the first embodiment. The optical communication system shown in Figure 1 includes a communication device 1, an opposing device 2, a first optical fiber 3, an optical amplifier 4, a second optical fiber 5, an optical amplifier 6, a first bypass fiber 7, a second bypass fiber 8, and a sensor device 9.
[0011] The communication device 1 includes an optical transmitter for transmitting communication light and an optical receiver for receiving communication light. The opposite device 2 is a communication device that transmits and receives communication light to and from the communication device 1. The opposite device 2 includes an optical receiver that receives communication light transmitted from the communication device 1, and an optical transmitter that transmits communication light to the communication device 1.
[0012] The first optical fiber 3 is realized by, for example, a single-mode fiber, a single-core core wire of a multimode fiber, or a multi-core core wire. One end of the first optical fiber 3 is connected to the communication device 1 , and the other end of the first optical fiber 3 is connected to the opposing device 2 . The first optical fiber 3 is an optical fiber for communication that propagates communication light transmitted from the communication device 1 to the opposite device 2 . An optical amplifier 4 is inserted into the first optical fiber 3 .
[0013] The optical amplifier 4 is realized by, for example, an erbium-doped fiber amplifier (EDFA) or a semiconductor optical amplifier (SOA). The optical amplifier 4 amplifies the communication light transmitted from the communication device 1 and outputs the amplified communication light to the opposing device 2 .
[0014] The second optical fiber 5 is realized by, for example, a single-mode fiber, a single-core core wire of a multimode fiber, or a multi-core core wire. One end of the second optical fiber 5 is connected to the communication device 1 , and the other end of the second optical fiber 5 is connected to the opposing device 2 . The second optical fiber 5 is an optical fiber for communication that propagates communication light transmitted from the opposite device 2 to the communication device 1 . An optical amplifier 6 is inserted into the second optical fiber 5 .
[0015] The optical amplifier 6 is realized by, for example, an EDFA or an SOA. The optical amplifier 6 amplifies the communication light transmitted from the opposite device 2 and outputs the amplified communication light to the communication device 1.
[0016] Each of the first bypass fibers 7-1 to 7-G is realized by, for example, a single-mode fiber, a single-core core wire of a multimode fiber, or a multi-core core wire, where G is an integer of 2 or more. The first bypass fiber 7 - g (g=1, . . . , G) is a fiber for bypassing the optical amplifier 4 inserted in the first optical fiber 3 . Specifically, one end of the first bypass fiber 7-g is connected to the input side of the optical amplifier 4, and the other end of the first bypass fiber 7-g is connected to the output side of the optical amplifier 4.
[0017] Each of the second bypass fibers 8-1 to 8-G is realized by, for example, a single-mode fiber, a single-core core wire of a multimode fiber, or a multi-core core wire. The second bypass fiber 8 - g is a fiber for bypassing the optical amplifier 6 inserted in the second optical fiber 5 . Specifically, one end of the second bypass fiber 8-g is connected to the input side of the optical amplifier 6, and the other end of the second bypass fiber 8-g is connected to the output side of the optical amplifier 6.
[0018] The sensor device 9 includes an optical transmitter that transmits sensor light, an optical receiver that receives backscattered light of the sensor light, and a detection unit that senses either the first optical fiber 3 or the second optical fiber 5 based on the backscattered light. The sensor device 9 sends sensor light to either the first optical fiber 3 or the second optical fiber 5 and receives backscattered light returning from either the first optical fiber 3 or the second optical fiber 5. The sensor device 9 senses either the first optical fiber 3 or the second optical fiber 5 based on the backscattered light.
[0019] Next, the operation of the optical communication system shown in FIG. 1 will be described. When the communication device 1 transmits communication light to the opposite device 2 , the communication device 1 sends the communication light to the first optical fiber 3 . The communication light sent to the first optical fiber 3 is amplified by the optical amplifier 4 , and the amplified communication light reaches the opposing device 2 . As a result, the opposite device 2 receives the communication light transmitted from the communication device 1.
[0020] When the opposite device 2 transmits communication light to the communication device 1 , the opposite device 2 sends the communication light to the second optical fiber 5 . The communication light sent to the second optical fiber 5 is amplified by the optical amplifier 6 , and the amplified communication light reaches the communication device 1 . As a result, the communication device 1 receives the communication light transmitted from the opposite device 2.
[0021] Each of the first optical fiber 3 and the second optical fiber 5 may change due to, for example, the surrounding environment or the passage of time, such as temperature change, vibration change, stress change, or optical loss change.
[0022] When sensing the first optical fiber 3 , the sensor device 9 transmits sensor light to the first optical fiber 3 . The sensor light sent to the first optical fiber 3 is scattered by the first optical fiber 3, and the backscattered light of the sensor light returns to the sensor device 9. The backscattered light of the sensor light is scattered light according to the change in the first optical fiber 3. As shown in FIG. 2, examples of backscattered light of the sensor light include Rayleigh scattered light, Brillouin scattered light, and Raman scattered light. FIG. 2 is an explanatory diagram showing optical spectrum images of the sensor light and the backscattered light. In Fig. 2, the horizontal axis represents wavelength, and Fig. 2 shows the optical spectra of the sensor light and the backscattered light.
[0023] Since the optical amplifier 4 inserted in the first optical fiber 3 has a unidirectional light transmission direction, the backscattered light of the sensor light cannot pass through the optical amplifier 4. However, since the optical communication system shown in FIG. 1 is provided with first bypass fibers 7-1 to 7-G for bypassing the optical amplifier 4, the backscattered light of the sensor light can return to the sensor device 9 via any of the first bypass fibers 7-1 to 7-G. The sensor device 9 receives the backscattered light returning from the first optical fiber 3, and senses the first optical fiber 3 based on the backscattered light. The sensing itself by the sensor device 9 is a known technique, and therefore a detailed description thereof will be omitted.
[0024] When sensing the second optical fiber 5, the sensor device 9 transmits sensor light to the second optical fiber 5. The sensor light sent to the second optical fiber 5 is scattered by the second optical fiber 5, and the backscattered light of the sensor light returns to the sensor device 9. The backscattered light of the sensor light is scattered light according to the change in the second optical fiber 5. Since the optical amplifier 6 inserted in the second optical fiber 5 has a unidirectional light transmission direction, the sensor light cannot pass through the optical amplifier 6. However, since the optical communication system shown in Fig. 1 is provided with second bypass fibers 8-1 to 8-G for bypassing the optical amplifier 6, the sensor light can propagate to the opposing device 2 side via any of the second bypass fibers 8-1 to 8-G. The sensor device 9 receives the backscattered light returned from the second optical fiber 5, and senses the second optical fiber 5 based on the backscattered light.
[0025] The optical communication system shown in FIG. 1 includes G first bypass fibers 7-1 to 7-G and G second bypass fibers 8-1 to 8-G. The first bypass fibers 7-1 to 7-G may be configured to be capable of propagating sensor light with different wavelengths and to propagate backscattered light with different wavelengths. The second bypass fibers 8-1 to 8-G may be configured to allow the propagation of sensor light with different wavelengths and also allow the propagation of backscattered light with different wavelengths. In this case, if the sensor device 9 sends multiple sensor lights with different wavelengths to the first optical fiber 3 in order to detect multiple types of changes, any of the first bypass fibers 7-1 to 7-G can be made to pass any of the sensor lights. Similarly, if the sensor device 9 sends multiple sensor lights with different wavelengths to the second optical fiber 5 to detect multiple types of changes, any of the second bypass fibers 8-1 to 8-G can be made to pass any of the sensor lights.
[0026] For example, the sensor light for detecting temperature changes can be configured to pass through each of the first bypass fiber 7-1 and the second bypass fiber 8-1, and the backscattered light of the sensor light can be configured to pass through each of the first bypass fiber 7-1 and the second bypass fiber 8-1. For example, the sensor light for detecting vibration changes can be configured to pass through each of the first bypass fiber 7-G and the second bypass fiber 8-G, and the backscattered light of the sensor light can be configured to pass through each of the first bypass fiber 7-G and the second bypass fiber 8-G.
[0027] In the above-described first embodiment, the optical communication system is configured to include a first optical fiber 3 that propagates communication light transmitted from the communication device 1 to the opposing device 2, a second optical fiber 5 that propagates communication light transmitted from the opposing device 2 to the communication device 1, a plurality of first bypass fibers 7-1 to 7-G that bypass the optical amplifier 4 inserted in the first optical fiber 3, and a plurality of second bypass fibers 8-1 to 8-G that bypass the optical amplifier 6 inserted in the second optical fiber 5. The optical communication system also includes a sensor device 9 that transmits sensor light to either the first optical fiber 3 or the second optical fiber 5 and receives backscattered light returned from either the first optical fiber 3 or the second optical fiber 5. Therefore, the optical communication system can sense the communication optical fiber without installing a sensing optical fiber connecting the communication device 1 and the opposing device 2.
[0028] 1, the sensor device 9 is disposed on the communication device 1 side. However, this is merely an example, and the sensor device 9 may be disposed on the opposite device 2 side. Even in this case, it is possible to sense the communication optical fiber without wiring an optical fiber for sensing that connects the communication device 1 and the opposite device 2.
[0029] The optical communication system shown in FIG. 1 includes a first optical fiber 3, a second optical fiber 5, first bypass fibers 7-1 to 7-G, and second bypass fibers 8-1 to 8-G. The optical communication system shown in Figure 1 also includes an optical communication system that includes an existing first optical fiber 3 and an existing second optical fiber 5, to which first bypass fibers 7-1 to 7-G, second bypass fibers 8-1 to 8-G, and a sensor device 9 are added.
[0030] Embodiment 2 In the second embodiment, an optical communication system including N (N is an integer of 2 or more) opposing devices 2 will be described.
[0031] Fig. 3 is a configuration diagram showing an optical communication system according to embodiment 2. In Fig. 3, the same reference numerals as in Fig. 1 indicate the same or corresponding parts, and detailed description thereof will be omitted. The optical communication system shown in FIG. 3 includes a communication device 1, opposing devices 2-1 to 2-N, a first optical fiber 3, first optical fibers 3-1 to 3-N after branching, optical amplifiers 4-1 to 4-N, a second optical fiber 5, second optical fibers 5-1 to 5-N after branching, optical amplifiers 6-1 to 6-N, first bypass fibers 7-1-1 to 7-NG, second bypass fibers 8-1-1 to 8-NG, a sensor device 9, and an optical path switching device 10.
[0032] Each of the opposite devices 2-1 to 2-N is a communication device having the same function as the opposite device 2 shown in FIG. The first optical fiber 3 is branched into N optical fibers by the optical route switching device 10, and the branched first optical fibers 3-n (n=1, . . . , N) are connected to the opposing device 2-n. An optical amplifier 4-n is inserted into the first branched optical fiber 3-n. The optical amplifier 4-n is realized by, for example, an EDFA or an SOA. The optical amplifier 4-n amplifies the communication light output from the optical route switching device 10 and outputs the amplified communication light to the opposite device 2-n.
[0033] The second optical fiber 5 is branched into N optical fibers by the optical route switching device 10, and the branched second optical fibers 5-n are connected to the opposing device 2-n. An optical amplifier 6-n is inserted into the second optical fiber 5-n after branching. The optical amplifier 6-n is realized by, for example, an EDFA or an SOA. The optical amplifier 6-n amplifies the communication light transmitted from the opposite device 2-n, and outputs the amplified communication light to the optical route switching device 10.
[0034] Each of the first bypass fibers 7-1-1 to 7-NG is realized by, for example, a single-mode fiber, a single-core core wire of a multimode fiber, or a multi-core core wire. The first bypass fiber 7-ng (g=1, . . . , G) is a fiber for bypassing the optical amplifier 4-n inserted in the first optical fiber 3-n. Specifically, one end of the first bypass fiber 7-ng is connected to the input side of the optical amplifier 4-n, and the other end of the first bypass fiber 7-ng is connected to the output side of the optical amplifier 4-n.
[0035] Each of the second bypass fibers 8-1-1 to 8-NG is realized by, for example, a single-mode fiber, a single-core core wire of a multimode fiber, or a multi-core core wire. The second bypass fiber 8-ng is a fiber for bypassing the optical amplifier 6-n inserted in the second optical fiber 5-n. Specifically, one end of the second bypass fiber 8-ng is connected to the input side of the optical amplifier 6-n, and the other end of the second bypass fiber 8-ng is connected to the output side of the optical amplifier 6-n.
[0036] The optical route switching device 10 is realized by, for example, a wavelength selective switch (WSS). The optical path switching device 10 outputs the communication light transmitted from the communication device 1 to one of the N opposing devices 2-1 to 2-N via one of the branched first optical fibers 3-n among the branched first optical fibers 3-1 to 3-N. The optical route switching device 10 outputs to the communication device 1 the communication light propagated through the second optical fiber 5-n branched from any of the opposite devices 2-n.
[0037] Next, the operation of the optical communication system shown in FIG. 3 will be described. In the optical communication system shown in Fig. 3, the wavelengths of the communication light related to the N opposite devices 2-1 to 2-N are different from one another as shown in Fig. 4. The wavelength of the communication light related to the opposite device 2-1 is, for example, λ 1,1 ~λ 1,G The wavelength of the communication light for the opposite device 2-(N-1) is, for example, λ K-1,1 ~λ K-1,G The wavelength of the communication light for the opposite device 2-N is, for example, λ K,1 ~λ K,G Note that N may be equal to K, or N may not be equal to K. In the case of N not equal to K, for example, N <Kである。 FIG. 4 is an explanatory diagram showing the wavelengths of communication light related to N opposing devices 2-1 to 2-N. In Fig. 4, the horizontal axis is wavelength. In the example of Fig. 4, λ 1,1 <<λ K,G-1 <λ K,G is. FIG. 4 shows an example in which the communication light is a 128 Gbit / s (32 GBd DP-QPSK) signal with a 50 GHz-grid per wavelength channel width. In the above example, when the communication device 1 transmits communication light to the opposite device 2-1, the communication device 1 transmits the communication light at a wavelength λ 1,1 ~λ 1,G When any one or more communication lights among the wavelengths λ K-1,1 ~λ K-1,G When any one or more communication lights among the wavelengths λ K,1 ~λ K,G One or more communication lights among these are output to the optical route switching device 10. When transmitting communication light to all of the N opposite devices 2-1 to 2-N, the communication device 1 transmits the communication light at wavelength λ 1,g (g=1, ,G), ,λ K,g The communication light including the above communication light is output to the optical route switching device 10.
[0038] When the optical route switching device 10 receives communication light from the communication device 1, it assigns a wavelength λ 1,g If the communication light of wavelength λ is included, 1,gThe communication light of wavelength λ is transmitted to the first optical fiber 3-1-g after branching. 1,g The communication light is output to the opposite device 2-1. The optical route switching device 10 converts the communication light output from the communication device 1 into a wavelength λ K-1,g If the communication light of wavelength λ is included, K-1,g By transmitting the communication light of wavelength λ to the first optical fiber 3-(N-1)-g after branching, K-1,g The communication light is output to the opposite device 2-(N-1). The optical route switching device 10 converts the communication light output from the communication device 1 into a wavelength λ K,g If the communication light of wavelength λ is included, K,g By sending the communication light of wavelength λ to the first optical fiber 3-Ng after branching, K,g The communication light is output to the opposite device 2-N.
[0039] The opposite device 2-n (n=1, , N) transmits the signal at wavelength λ k,g By sending the communication light of wavelength λ to the second optical fiber 5-ng after branching, k,g The communication light is output to the optical route switching device 10. k is any one of 1 to K. The optical route switching device 10 receives the wavelength λ k,g When receiving communication light of wavelength λ k,g By transmitting the communication light of wavelength λ k,g The communication light is output to the communication device 1. For example, when the optical route switching device 10 receives communication light from N opposite devices 2-1 to 2-N, it 1,g ,···,λ K,g The communication light including the above-mentioned communication light is sent to the second optical fiber 5, and thereby the communication light is output to the communication device 1.
[0040] 3, the wavelengths of the sensor light associated with the N opposite devices 2-1 to 2-N are different from one another. The wavelength of the sensor light associated with the opposite device 2-1 is, for example, λ 1,1 '~λ 1,G ', the wavelength of the sensor light of the opposite device 2-(N-1) is, for example, λ K-1,1 '~λK-1,G ', the wavelength of the sensor light of the opposite device 2-N is, for example, λ K,1 '~λ K,G For example, λ 1,1 '<···<λ K,g '<λ 1,1 <<λ K,g , or λ 1,1 <<λ K,g <λ 1,1 '<···<λ K,g ' is.
[0041] When sensing the first branched optical fiber 3-n (n=1, . . . , N), the sensor device 9 senses the wavelength λ k,g The sensor light of ' is sent to the first optical fiber 3. The wavelength λ sent to the first optical fiber 3 k,g The sensor light of ' is sent by the optical route switching device 10 to the first branched optical fiber 3-n. The sensor light sent to the branched first optical fiber 3-n is scattered by the branched first optical fiber 3-n, and backscattered light of the sensor light returns to the optical route switching device 10. The optical route switching device 10 outputs the backscattered light to the sensor device 9 by sending the backscattered light to the first optical fiber 3 . Since the optical amplifier 4-n inserted into the first branched optical fiber 3-n has a unidirectional light transmission direction, the backscattered light of the sensor light cannot pass through the optical amplifier 4-n. However, since the optical communication system shown in Fig. 3 is provided with a first bypass fiber 7-ng for bypassing the optical amplifier 4-n, the backscattered light of the sensor light can return to the sensor device 9 via the first bypass fiber 7-ng. The sensor device 9 receives the backscattered light output from the optical route switching device 10, and senses the branched first optical fiber 3-n based on the backscattered light.
[0042] When sensing the second optical fiber 5-n after branching, the sensor device 9 senses the wavelength λ k-g The sensor light of ' is sent to the second optical fiber 5. The sensor light sent to the second optical fiber 5 is sent by the optical route switching device 10 to the second optical fiber 5-n after branching. The sensor light sent to the branched second optical fiber 5-n is scattered by the branched second optical fiber 5-n, and backscattered light of the sensor light returns to the optical route switching device 10. The optical route switching device 10 outputs the backscattered light to the sensor device 9 by sending the backscattered light to the second optical fiber 5 . Since the optical amplifier 6-n inserted into the branched second optical fiber 5-n has a unidirectional light transmission direction, the sensor light cannot pass through the optical amplifier 6-n. However, since the optical communication system shown in Figure 3 is provided with a second bypass fiber 8-ng for bypassing the optical amplifier 6-n, the sensor light can propagate to the opposing device 2-n via the second bypass fiber 8-ng. The sensor device 9 receives the backscattered light output from the optical route switching device 10, and senses the branched second optical fiber 5-n based on the backscattered light.
[0043] In the above-described second embodiment, the optical communication system is configured to include N (N is an integer equal to or greater than 2) opposing devices 2, an optical route switching device 10 that branches each of the first optical fiber 3 and the second optical fiber 5 into N optical fibers, and is connected to each opposing device 2-n via each of the branched first optical fiber 3-n and the branched second optical fiber 5-n. The optical communication system also includes a plurality of first bypass fibers 7-n-1 to 7-nG as first bypass fibers 7-g that bypass optical amplifiers 4-n inserted in the respective branched first optical fibers 3-n, and a plurality of second bypass fibers 8-n-1 to 8-nG as second bypass fibers 8-g that bypass optical amplifiers 6-n inserted in the respective branched second optical fibers 5-n. Therefore, even if the optical communication system has N opposing devices 2-1 to 2-N, it is possible to sense the communication optical fiber without wiring a sensing optical fiber connecting the communication device 1 and the opposing devices 2-1 to 2-N.
[0044] Embodiment 3 In the third embodiment, an optical communication system including M (M is an integer equal to or greater than 2) communication devices 1 will be described.
[0045] Fig. 5 is a configuration diagram showing an optical communication system according to embodiment 3. In Fig. 5, the same reference numerals as in Fig. 1 and Fig. 3 indicate the same or corresponding parts, and detailed description thereof will be omitted. The optical communication system shown in FIG. 5 includes communication devices 1-1 to 1-M, opposing devices 2-1 to 2-N, first optical fibers 3-1' to 3-M', first optical fibers 3-1 to 3-N after branching, optical amplifiers 4-1 to 4-N, second optical fibers 5-1' to 5-M', second optical fibers 5-1 to 5-N after branching, optical amplifiers 6-1 to 6-N, first bypass fibers 7-1-1 to 7-NG, second bypass fibers 8-1-1 to 8-NG, a sensor device 9, an optical path switching device 10, and an optical multiplexing / demultiplexing device 11.
[0046] Each of the communication devices 1-1 to 1-M has the same functions as the communication device 1 shown in FIG. The communication device 1-m (m=1, . . . , M) is connected to the optical multiplexing / demultiplexing device 11 via a first optical fiber 3-m'. Furthermore, the communication device 1-m is connected to an optical multiplexing / demultiplexing device 11 via a second optical fiber 5-m'.
[0047] Each of the first optical fibers 3-1' to 3-M' is realized by, for example, a single-mode fiber, a single-core core wire of a multimode fiber, or a multi-core core wire. One end of the first optical fiber 3-m is connected to the communication device 1-m, and the other end of the first optical fiber 3-m is connected to the optical multiplexing / demultiplexing device 11.
[0048] Each of the second optical fibers 5-1' to 5-M' is realized by, for example, a single-mode fiber, a single-core core wire of a multimode fiber, or a multi-core core wire. One end of the second optical fiber 5-m is connected to the communication device 1-m, and the other end of the second optical fiber 5-m is connected to the optical multiplexing / demultiplexing device 11.
[0049] The optical multiplexing / demultiplexing device 11 is realized by, for example, a combination of a multiplexer and a demultiplexer, an arrayed waveguide grating (AWG), or a WSS. The optical multiplexing / demultiplexing device 11 multiplexes communication light transmitted from at least one communication device 1-m among the M communication devices 1-1 to 1-M, and outputs the multiplexed communication light to the optical route switching device . The optical multiplexing and demultiplexing device 11 demultiplexes the communication light output from the optical route switching device 10, and outputs each demultiplexed communication light to one of the M communication devices 1-1 to 1-M, ie, a communication device 1-m.
[0050] 5, the wavelengths of the communication light of M communication devices 1-1 to 1-M associated with N opposite devices 2-1 to 2-N are different from each other. The wavelength of the communication light of communication device 1-m (m=1, . . . , M) associated with opposite device 2-n (n=1, . . . , N) is λm-k,1 ~λ m-k,G Specifically, the wavelength of the communication light of the communication device 1-1 associated with the opposite device 2-1 is, for example, λ 1-1,1 ~λ 1-1,G The wavelength of the communication light of the communication device 1-M associated with the opposite device 2-N is, for example, λ M-K,1 ~λ M-K,G is.
[0051] When a communication device 1-m (m=1, . . . , M) transmits communication light to a corresponding device 2-n (n=1, . . . , N), the communication device 1-m (m=1, . . . , M) transmits communication light at a wavelength λ m-k,g The communication light is transmitted to the optical multiplexer / demultiplexer 11. The optical multiplexing / demultiplexing device 11 multiplexes communication light transmitted from at least one communication device 1-m among the M communication devices 1-1 to 1-M. The optical multiplexing / demultiplexing device 11 outputs the multiplexed communication light to the optical route switching device 10.
[0052] When the optical route switching device 10 receives the multiplexed communication light from the optical multiplexing / demultiplexing device 11, the optical route switching device 10 assigns a wavelength λ m-k,g If the communication light of wavelength λ is included, m-k,g By transmitting the communication light of wavelength λ to the first optical fiber 3-n after branching, m-k,g The communication light is output to the opposite device 2-n.
[0053] The opposite device 2-n transmits a signal at wavelength λ m-k,g By transmitting the communication light of wavelength λ to the second optical fiber 5-n, m-k,g The communication light is transmitted to the optical route switching device 10. The optical route switching device 10 receives the wavelength λ m-k,g When receiving communication light of wavelength λ m-k,g The communication light is output to the optical multiplexer / demultiplexer 11.
[0054] The optical multiplexer / demultiplexer 11 receives the wavelength λ m-k,g When receiving communication light of wavelength λ m-k,g By transmitting the communication light of wavelength λ to the second optical fiber 5-m', m-k,g The communication light is output to the communication device 1-m.
[0055] 5, the wavelengths of the sensor light of M communication devices 1-1 to 1-M associated with N opposite devices 2-1 to 2-N are different from each other. The wavelength of the sensor light of a communication device 1-m (m=1, . . . , M) associated with an opposite device 2-n (n=1, . . . , N) is λ m-k,g Specifically, the wavelength of the sensor light of the communication device 1-1 associated with the opposite device 2-1 is, for example, λ 1-1,g ', the wavelength of the sensor light of the communication device 1-M associated with the opposite device 2-N is, for example, λ M-K,g ' is.
[0056] When sensing the first branched optical fiber 3-n (n=1, . . . , N), the sensor device 9 senses the wavelength λ m-k,g The sensor light of ' is sent to the first optical fiber 3-m. The wavelength λ transmitted to the first optical fiber 3-m m-k,g The sensor light of wavelength λ ′ is output to the optical route switching device 10 via the optical multiplexing / demultiplexing device 11. m-k,g The sensor light of ' is sent by the optical route switching device 10 to the first branched optical fiber 3-n. The sensor light sent to the branched first optical fiber 3-n is scattered by the branched first optical fiber 3-n, and backscattered light of the sensor light returns to the optical route switching device 10. The optical route switching device 10 outputs the backscattered light to the optical multiplexing / demultiplexing device 11 . The optical multiplexing / demultiplexing device 11 outputs the backscattered light to the sensor device 9 by sending the backscattered light to the first optical fiber 3-m′. The sensor device 9 receives the backscattered light output from the optical multiplexing / demultiplexing device 11, and senses the branched first optical fiber 3-n based on the backscattered light.
[0057] When sensing the second optical fiber 5-n after branching, the sensor device 9 senses the wavelength λ m-k,g The sensor light of the first optical fiber 5-n is transmitted to the second optical fiber 5-n. The sensor light transmitted to the second optical fiber 5 is output to the optical route switching device 10 via the optical multiplexing / demultiplexing device 11, and is converted into a signal of wavelength λ m-k,g The sensor light of ' is sent by the optical route switching device 10 to the second optical fiber 5-n after branching. The sensor light sent to the branched second optical fiber 5-n is scattered by the branched second optical fiber 5-n, and backscattered light of the sensor light returns to the optical route switching device 10. The optical route switching device 10 outputs the backscattered light to the optical multiplexing / demultiplexing device 11 . The optical multiplexing / demultiplexing device 11 outputs the backscattered light to the sensor device 9 by sending the backscattered light to the second optical fiber 5-m′. The sensor device 9 receives the backscattered light output from the optical multiplexing / demultiplexing device 11, and senses the branched second optical fiber 5-n based on the backscattered light.
[0058] In the above third embodiment, the optical communication system is configured to include M (M is an integer equal to or greater than 2) communication devices, and an optical multiplexing / demultiplexing device 11 that multiplexes communication light transmitted from one or more communication devices 1-m of the M communication devices 1-1 to 1-M, outputs the multiplexed communication light to an optical route switching device 10, and demultiplexes the communication light output from the optical route switching device 10, and outputs each demultiplexed communication light to any one of the M communication devices 1-1 to 1-M. Therefore, even when the optical route switching device 10 includes M communication devices 1-1 to 1-M, it is possible for the optical route switching device 10 to sense the communication optical fiber without wiring a sensing optical fiber connecting the communication devices 1-1 to 1-M and the opposing devices 2-1 to 2-N.
[0059] Embodiment 4 In the fourth embodiment, an optical communication system including P (P is an integer equal to or greater than 2) sensor devices 9-1 to 9-P will be described.
[0060] Fig. 6 is a configuration diagram showing an optical communication system according to embodiment 4. In Fig. 6, the same reference numerals as in Fig. 1, Fig. 3 and Fig. 5 indicate the same or corresponding parts, and detailed description thereof will be omitted. The optical communication system shown in FIG. 6 includes communication devices 1-1 to 1-M, opposing devices 2-1 to 2-N, first optical fibers 3-1' to 3-M', first optical fibers 3-1 to 3-N after branching, optical amplifiers 4-1 to 4-N, second optical fibers 5-1' to 5-M', second optical fibers 5-1 to 5-N after branching, optical amplifiers 6-1 to 6-N, first bypass fibers 7-1-1 to 7-NG, second bypass fibers 8-1-1 to 8-NG, sensor devices 9-1 to 9-P, an optical path switching device 10, and an optical multiplexing / demultiplexing device 11.
[0061] Each of the sensor devices 9-1 to 9-P has the same functions as the sensor device 9 shown in FIG. The sensor device 9-1 emits, for example, a sensor light for detecting a temperature change, the sensor device 9-2 emits, for example, a sensor light for detecting a vibration change, and the sensor device 9-P emits, for example, a sensor light for detecting a stress change. The wavelengths of these P sensor lights are different from each other.
[0062] Next, the operation of the optical communication system shown in Fig. 6 will be described. However, apart from the sensor devices 9-1 to 9-P, the optical communication system is the same as that shown in Fig. 5. Therefore, here, the operation of the sensor devices 9-1 to 9-P will be mainly described.
[0063] When sensing the first optical fiber 3-n (n=1,...,N) after branching, one of the P sensor devices 9-1 to 9-P, 9-p (p=1,...,P) transmits sensor light to the first optical fiber 3-m (m=1,...,M) to transmit the sensor light to the optical multiplexing and demultiplexing device 11. For example, when detecting a temperature change in the first optical fiber 3-n after branching, the sensor device 9-1 emits sensor light, and when detecting a vibration change in the first optical fiber 3-n after branching, the sensor device 9-2 emits sensor light. The optical multiplexing / demultiplexing device 11 outputs the sensor light transmitted from the sensor device 9-p to the optical route switching device 10, and outputs backscattered light of the sensor light output from the optical route switching device 10 to the sensor device 9-p. The sensor device 9-p receives the backscattered light output from the optical multiplexing / demultiplexing device 11, and senses the branched first optical fiber 3-n based on the backscattered light.
[0064] When sensing the second optical fiber 5-n after branching, one of the P sensor devices 9-1 to 9-P, 9-p, transmits sensor light to the second optical fiber 5-m, thereby transmitting the sensor light to the optical multiplexing and demultiplexing device 11. For example, when detecting a temperature change in the second optical fiber 5-n after branching, the sensor device 9-1 emits sensor light, and when detecting a vibration change in the second optical fiber 5-n after branching, the sensor device 9-2 emits sensor light. The optical multiplexing / demultiplexing device 11 outputs the sensor light transmitted from the sensor device 9-p to the optical route switching device 10, and outputs backscattered light of the sensor light output from the optical route switching device 10 to the sensor device 9-p. The sensor device 9-p receives the backscattered light output from the optical multiplexing / demultiplexing device 11, and senses the branched second optical fiber 5-n based on the backscattered light.
[0065] In the above fourth embodiment, the optical communication system is configured so that there are P (P is an integer equal to or greater than 2) sensor devices 9, and the optical multiplexing and demultiplexing device 11 outputs sensor light transmitted from each of the P sensor devices to the optical path switching device 10, and outputs backscattered light output from the optical path switching device 10 to the sensor device 9-p. Therefore, the optical communication system can sense the communication optical fiber without wiring sensing optical fibers connecting the communication devices 1-1 to 1-M and the opposing devices 2-1 to 2-N, and can detect multiple types of changes in the communication optical fiber.
[0066] Embodiment 5. In embodiment 5, an optical communication system is described in which an optical multiplexing / demultiplexing device 12 outputs backscattered light within the pass wavelength band of the backscattered light output from an optical path switching device 10 to a sensor device 9, and blocks backscattered light outside the pass wavelength band.
[0067] Fig. 7 is a configuration diagram showing an optical communication system according to embodiment 5. In Fig. 7, the same reference numerals as in Figs. 1, 3, 5 and 6 indicate the same or corresponding parts, and detailed description thereof will be omitted. The optical communication system shown in FIG. 7 includes communication devices 1-1 to 1-M, opposing devices 2-1 to 2-N, first optical fibers 3-1' to 3-M', first optical fibers 3-1 to 3-N after branching, optical amplifiers 4-1 to 4-N, second optical fibers 5-1' to 5-M', second optical fibers 5-1 to 5-N after branching, optical amplifiers 6-1 to 6-N, first bypass fibers 7-1-1 to 7-NG, second bypass fibers 8-1-1 to 8-NG, a sensor device 9, an optical path switching device 10, and an optical multiplexing / demultiplexing device 12.
[0068] The optical multiplexing / demultiplexing device 12 is realized by, for example, a combination of a multiplexer and a demultiplexer, an AWG, or a WSS. Similar to the optical multiplexing and demultiplexing device 11 shown in FIG. 5, the optical multiplexing and demultiplexing device 12 multiplexes communication light transmitted from one or more communication devices 1-m among the M communication devices 1-1 to 1-M, and outputs the multiplexed communication light to the optical path switching device 10. The optical multiplexing and demultiplexing device 12 demultiplexes the communication light output from the optical route switching device 10, and outputs each demultiplexed communication light to one of the M communication devices 1-1 to 1-M, ie, a communication device 1-m. Unlike the optical multiplexing / demultiplexing device 11 shown in Figure 5, the optical multiplexing / demultiplexing device 12 outputs the backscattered light within the pass wavelength band of the backscattered light output from the optical path switching device 10 to the sensor device 9, and blocks the backscattered light outside the pass wavelength band.
[0069] In the optical communication system shown in Fig. 7, the optical multiplexing / demultiplexing device 12 is applied to the optical communication system shown in Fig. 5. However, this is merely an example, and the optical multiplexing / demultiplexing device 12 may also be applied to the optical communication system shown in Fig. 6.
[0070] Next, the operation of the optical communication system shown in Fig. 7 will be described. However, apart from the optical multiplexing / demultiplexing device 12, the optical communication system is the same as that shown in Fig. 5. Therefore, only the operation of the optical multiplexing / demultiplexing device 12 will be described here.
[0071] When sensing the first optical fiber 3-n (n=1,...,N) after branching, or when sensing the second optical fiber 5-n after branching, the optical multiplexing / demultiplexing device 12 acquires the backscattered light output from the optical path switching device 10. The optical multiplexing / demultiplexing device 12 includes, for example, a bandpass filter having a desired pass wavelength band, or the optical multiplexing / demultiplexing device 12 has wavelengths selected by a WSS so as to have a desired pass wavelength band. The optical multiplexing / demultiplexing device 12 provides the backscattered light to a bandpass filter or WSS, and outputs the backscattered light output from the optical path switching device 10 to the sensor device 9 if the backscattered light output from the optical path switching device 10 is backscattered light within the pass wavelength band. The optical multiplexing / demultiplexing device 12 blocks the backscattered light output from the optical route switching device 10 if the backscattered light output from the optical route switching device 10 is backscattered light outside the pass wavelength band.
[0072] In the above-described fifth embodiment, the optical communication system is configured so that the optical multiplexing / demultiplexing device 12 outputs, to the sensor device 9, backscattered light within the pass wavelength band, out of the backscattered light output from the optical path switching device 10, and blocks backscattered light outside the pass wavelength band. Therefore, the optical communication system can sense the communication optical fiber without wiring a sensing optical fiber connecting the communication devices 1-1 to 1-M and the opposing devices 2-1 to 2-N, and can prevent degradation of sensing accuracy due to noise, etc.
[0073] Embodiment 6 In the sixth embodiment, an optical communication system will be described in which an optical multiplexing / demultiplexing device 11 includes a first optical multiplexing / demultiplexing device 11a and a second optical multiplexing / demultiplexing device 11b.
[0074] Fig. 8 is a configuration diagram showing an optical communication system according to embodiment 6. In Fig. 8, the same reference numerals as those in Fig. 1, Fig. 3, and Fig. 5 to Fig. 7 indicate the same or corresponding parts, and detailed description thereof will be omitted. The optical communication system shown in FIG. 8 includes communication devices 1-1 to 1-M, opposing devices 2-1 to 2-N, first optical fibers 3-1' to 3-M', first optical fibers 3-1 to 3-N after branching, optical amplifiers 4-1 to 4-N, second optical fibers 5-1' to 5-M', second optical fibers 5-1 to 5-N after branching, optical amplifiers 6-1 to 6-N, first bypass fibers 7-1-1 to 7-NG, second bypass fibers 8-1-1 to 8-NG, sensor devices 9-1 to 9-P, an optical route switching device 10, a first optical multiplexer / demultiplexer 11a, and a second optical multiplexer / demultiplexer 11b.
[0075] The first optical multiplexer / demultiplexer 11a is realized by, for example, a combination of a multiplexer and a demultiplexer, an AWG, or a WSS. The first optical multiplexer / demultiplexer 11a multiplexes communication light transmitted from one or more communication devices 1-m among the M communication devices 1-1 to 1-M, and outputs the multiplexed communication light to the optical route switching device 10. The first optical multiplexer / demultiplexer 11a demultiplexes the communication light output from the optical route switching device 10, and outputs each demultiplexed communication light to one of the M communication devices 1-1 to 1-M, ie, a communication device 1-m.
[0076] The second optical multiplexer / demultiplexer 11b is realized by, for example, a combination of a multiplexer and a demultiplexer, an AWG, or a WSS. The second optical multiplexer / demultiplexer 11b outputs to the optical route switching device 10 the sensor light transmitted from one or more sensor devices 9-p (p=1, . . . , P) among the P sensor devices 9-1 to 9-P. The second optical multiplexer / demultiplexer 11b outputs the backscattered light of the sensor light output from the optical route switching device 10 to the sensor device 9-n that is the source of the sensor light.
[0077] In the optical communication system shown in Fig. 8, the first optical multiplexer / demultiplexer 11a and the second optical multiplexer / demultiplexer 11b are applied to the optical multiplexer / demultiplexer 11 of the optical communication system shown in Fig. 6. However, this is merely an example, and the first optical multiplexer / demultiplexer 11a and the second optical multiplexer / demultiplexer 11b may also be applied to the optical multiplexer / demultiplexer 11 of the optical communication system shown in Fig. 5 or the optical multiplexer / demultiplexer 12 of the optical communication system shown in Fig. 7.
[0078] In the optical communication system shown in FIG. 8, the optical multiplexing / demultiplexing device 11 includes a first optical multiplexer / demultiplexer 11a for multiplexing / demultiplexing communication light, and a second optical multiplexer / demultiplexer 11b for multiplexing sensor light and demultiplexing backscattered light, in addition to the first optical multiplexer / demultiplexer 11a for multiplexing / demultiplexing communication light. As a result, the optical multiplexing / demultiplexing device 11 shown in Figure 8 can reduce interference between communication light and sensor light, or interference between communication light and backscattered light, more than an optical multiplexer / demultiplexer that combines multiplexing / demultiplexing of communication light and multiplexing / demultiplexing of sensor light, etc.
[0079] Embodiment 7 In the seventh embodiment, an optical communication system including a selection device 13 that connects any one of the P sensor devices 9-1 to 9-P (p=1, . . . , P) to an optical multiplexing and demultiplexing device 11 will be described.
[0080] Fig. 9 is a configuration diagram showing an optical communication system according to embodiment 7. In Fig. 9, the same reference numerals as those in Fig. 1, Fig. 3, and Fig. 5 to Fig. 8 indicate the same or corresponding parts, and detailed description thereof will be omitted. The optical communication system shown in FIG. 9 includes communication devices 1-1 to 1-M, opposing devices 2-1 to 2-N, first optical fibers 3-1' to 3-M', first optical fibers 3-1 to 3-N after branching, optical amplifiers 4-1 to 4-N, second optical fibers 5-1' to 5-M', second optical fibers 5-1 to 5-N after branching, optical amplifiers 6-1 to 6-N, first bypass fibers 7-1-1 to 7-NG, second bypass fibers 8-1-1 to 8-NG, sensor devices 9-1 to 9-P, an optical path switching device 10, an optical multiplexing / demultiplexing device 11, a selection device 13, and an optical terminator 14.
[0081] The selection device 13 has a plurality of input / output ports, and the P sensor devices 9-1 to 9-P and the optical multiplexing / demultiplexing device 11 are connected to different input / output ports. The selection device 13 connects any one of the P sensor devices 9-1 to 9-P (p=1, . . . , P) to the optical multiplexing and demultiplexing device 11. Of the multiple input / output ports that the selector 13 has, one input / output port (one end) is optically terminated by an optical terminator 14. The optical terminator 14 is a terminator that terminates one end of the selection device 13 . 9, the selection device 13 is provided outside the optical multiplexing / demultiplexing device 11. However, this is merely an example, and the selection device 13 may be provided inside the optical multiplexing / demultiplexing device 11, for example.
[0082] Next, the operation of the optical communication system shown in Fig. 9 will be described. However, apart from the selection device 13, the optical communication system is the same as that shown in Fig. 6. Therefore, the operation of the selection device 13 will be mainly described here.
[0083] The selection device 13 connects any one of the P sensor devices 9-1 to 9-P (p=1, . . . , P) to the optical multiplexing and demultiplexing device 11. When the sensor device 9-p (p=1, . . . , P) is connected to the optical multiplexing and demultiplexing device 11 by the selection device 13, the sensor light transmitted from the sensor device 9-p is output to the optical multiplexing and demultiplexing device 11 via the selection device 13. In addition, the backscattered light output from the optical multiplexing and demultiplexing device 11 is output to the sensor device 9-p via the selection device 13.
[0084] Of the multiple input / output ports that the selection device 13 has, one input / output port is optically terminated by the optical terminator 14. As a result, when the sensor device 9-p transmits sensor light, for example, in the case where the opposing device 2-n transmits sensor light, the sensor light transmitted from the opposing device 2-n is optically terminated, thereby making it possible to prevent multiple reflections of the sensor light.
[0085] In the seventh embodiment described above, the optical communication system is configured to include a selection device 13 that connects any one of the P sensor devices 9-1 to 9-P to the optical multiplexing and demultiplexing device 11. Therefore, the optical communication system can detect multiple types of changes in the communication optical fiber without wiring sensing optical fibers that connect the communication devices 1-1 to 1-M and the opposing devices 2-1 to 2-N.
[0086] Embodiment 8 In the eighth embodiment, an optical communication system is described in which a first bypass fiber 7-g (g=1,...,G) is provided with a wavelength division multiplexing filter 7a or a wavelength division multiplexing coupler 7b as a connection part for the first optical fiber 3, and a second bypass fiber 8-g is provided with a wavelength division multiplexing filter 8a or a wavelength division multiplexing coupler 8b as a connection part for the second optical fiber 5.
[0087] Fig. 10 is a configuration diagram showing a part of an optical communication system according to embodiment 8. In Fig. 10, the same reference numerals as those in Fig. 1, Fig. 3, and Fig. 5 to Fig. 9 indicate the same or corresponding parts, and detailed description thereof will be omitted. The first bypass fiber 7-g (g=1, . . . , G) includes, as a connecting component for the first optical fiber 3, a wavelength division multiplexing filter 7a or a wavelength division multiplexing coupler 7b. The second bypass fiber 8-g is provided with a wavelength division multiplexing filter 8a or a wavelength division multiplexing coupler 8b as a connecting component for the second optical fiber 5.
[0088] In the optical communication system shown in Fig. 10, wavelength division multiplexing filters 7a and 8a or wavelength division multiplexing couplers 7b and 8b are applied to the optical communication system shown in Fig. 1. However, this is merely an example, and wavelength division multiplexing filters 7a and 8a or wavelength division multiplexing couplers 7b and 8b may also be applied to the optical communication systems shown in Fig. 3 and Fig. 5 to Fig. 9.
[0089] 10, a first bypass fiber 7-g includes a wavelength division multiplexing filter 7a or a wavelength division multiplexing coupler 7b as a connection component for the first optical fiber 3, and a second bypass fiber 8-g includes a wavelength division multiplexing filter 8a or a wavelength division multiplexing coupler 8b as a connection component for the second optical fiber 5. The wavelength division multiplexing filters 7a, 8a and the wavelength division multiplexing couplers 7b, 8b are each passive components. Therefore, even if, for example, supervisory control communication cannot be established between devices and the connection components for the first optical fiber 3 and the second optical fiber 5 cannot be actively controlled, or even if the optical amplifiers 4, 6 are powered off, sensing of the communication optical fiber is possible.
[0090] Embodiment 9 In the ninth embodiment, an optical communication system is described in which a first bypass fiber 7-g (g=1,...,G) is equipped with a bidirectional optical amplifier 7c that does not include an optical isolator, and a second bypass fiber 8-g is equipped with a bidirectional optical amplifier 8c that does not include an optical isolator.
[0091] Fig. 11 is a configuration diagram showing a part of an optical communication system according to embodiment 9. In Fig. 11, the same reference numerals as those in Fig. 1, Fig. 3, and Fig. 5 to Fig. 10 indicate the same or corresponding parts, and detailed description thereof will be omitted. The optical amplifier 7c is realized by, for example, a semiconductor optical amplifier (SOA). The optical amplifier 7c is inserted into the first bypass fiber 7-g (g=1, . . . , G). The optical amplifier 7c is a bidirectional optical amplifier that does not include an optical isolator, and amplifies both the sensor light and the backscattered light.
[0092] The optical amplifier 8c is realized by, for example, an SOA. The optical amplifier 8c is inserted into a second bypass fiber 8-g (g=1, . . . , G). The optical amplifier 8c is a bidirectional optical amplifier that does not include an optical isolator, and amplifies both the sensor light and the backscattered light.
[0093] In the optical communication system shown in Fig. 11, the optical amplifier 7c and the optical amplifier 8c are each applied to the optical communication system shown in Fig. 1. However, this is merely an example, and the optical amplifier 7c and the optical amplifier 8c may each be applied to the optical communication system shown in Fig. 3 or any one of Figs. 5 to 10.
[0094] In the optical communication system shown in FIG. 11, the optical amplifier 7c is inserted in the first bypass fiber 7-g, so that the sensor light and backscattered light carried by the first bypass fiber 7-g are each amplified. Since the optical amplifier 7c is a bidirectional optical amplifier, both the sensor light and the backscattered light can pass through the optical amplifier 7c. Furthermore, since the optical amplifier 8c is inserted in the second bypass fiber 8-g, the sensor light and backscattered light carried by the second bypass fiber 8-g are each amplified. Since the optical amplifier 8c is a bidirectional optical amplifier, both the sensor light and the backscattered light can pass through the optical amplifier 8c. 11 can improve the sensing accuracy of the sensor device 9 compared to the optical communication system shown in FIG.
[0095] Embodiment 10 In the tenth embodiment, the first bypass fiber 7-g (g=1, . . . , G) is used to separate the sensor light from the rear light. scattering and a second bypass fiber 8-g is provided for passing the sensor light and the rear light. scattering An optical communication system equipped with an optical bandpass filter 8d that passes light will be described.
[0096] Fig. 12 is a configuration diagram showing a part of an optical communication system according to embodiment 10. In Fig. 12, the same reference numerals as those in Fig. 1, Fig. 3, and Fig. 5 to Fig. 11 indicate the same or corresponding parts, and detailed description thereof will be omitted. The optical bandpass filter 7d is realized by, for example, a dielectric multilayer film or a diffraction grating. The optical bandpass filter 7d is inserted into the first bypass fiber 7-g (g=1, . . . , G). The optical bandpass filter 7d separates the sensor light from the rear light. scattering It allows light to pass through and blocks noise and other elements from passing through. The optical bandpass filter 8d is realized by, for example, a dielectric multilayer film or a diffraction grating. The optical bandpass filter 8d is inserted into the second bypass fiber 8-g (g=1, . . . , G). The optical bandpass filter 8d separates the sensor light from the rear light. scattering It allows light to pass through and blocks noise and other elements from passing through.
[0097] In the optical communication system shown in Fig. 12, the optical bandpass filter 7d and the optical bandpass filter 8d are each applied to the optical communication system shown in Fig. 1. However, this is merely an example, and the optical bandpass filter 7d and the optical bandpass filter 8d may each be applied to the optical communication system shown in Fig. 3 or any one of Figs. 5 to 11.
[0098] In the optical communication system shown in FIG. 12, the optical bandpass filter 7d is inserted in the first bypass fiber 7-g, so that the sensor light and backscattered light carried by the first bypass fiber 7-g can pass through while blocking noise and the like. Furthermore, since the optical bandpass filter 8d is inserted into the second bypass fiber 8-g, it is possible to pass the sensor light and backscattered light carried by the second bypass fiber 8-g while blocking the passage of noise and the like. 12 can improve the sensing accuracy of the sensor device 9 compared to the optical communication system shown in FIG.
[0099] Embodiment 11 In the eleventh embodiment, an optical communication system in which a third optical fiber 15 is connected to an optical route switching device 10 will be described.
[0100] Fig. 13 is a configuration diagram showing an optical communication system according to embodiment 11. In Fig. 13, the same reference numerals as in Fig. 1, Fig. 3, and Fig. 5 to Fig. 12 indicate the same or corresponding parts, and detailed description thereof will be omitted. The third optical fiber 15 is realized by, for example, a single-mode fiber, a single-core core wire of a multimode fiber, or a multi-core core wire. The third optical fiber 15 is an optical fiber dedicated to the sensor, one end of which is connected to the optical route switching device 10 .
[0101] In the optical communication system shown in Fig. 13, the third optical fiber 15 is applied to the optical communication system shown in Fig. 5. However, this is just one example, and the third optical fiber 15 may be applied to the optical communication system shown in Fig. 3 or any one of Figs. 6 to 12.
[0102] 13, in addition to the branched first optical fibers 3-1 to 3-N and the branched second optical fibers 5-1 to 5-N, a third optical fiber 15 is connected to the optical route switching device 10. This makes it possible to sense not only the branched first optical fibers 3-1 to 3-N and the branched second optical fibers 5-1 to 5-N, but also the third optical fiber 15.
[0103] FIG. 14 is a configuration diagram showing another optical communication system according to the eleventh embodiment. As shown in FIG. 14, the third optical fiber 15 may be wound around a power cable to realize a CT (Current Transformer) that measures the current flowing through the power cable. In this case, sensing can be performed not only on the first branched optical fibers 3-1 to 3-N and the second branched optical fibers 5-1 to 5-N but also on the third optical fiber 15.
[0104] Embodiment 12 In embodiments 1 to 11, the optical communication system includes a plurality of first bypass fibers 7-g (g = 1, ..., G), 7-ng that bypass optical amplifiers 4, 4-n inserted in first optical fibers 3, 3-n (n = 1, ..., N), and a plurality of second bypass fibers 8-g, 8-ng that bypass optical amplifiers 6, 6-n inserted in second optical fibers 5, 5-n. In embodiment 12, an optical communication system is described in which one or more communication light bypass fibers 21 are wired to a first optical fiber 3 (or the first optical fiber 3-n after branching) to connect multiple optical amplifiers 4 (or optical amplifiers 4-n) in parallel, and one or more communication light bypass fibers 22 are wired to a second optical fiber 5 (or the second optical fiber 5-n after branching) to connect multiple optical amplifiers 6 (or optical amplifiers 6-n) in parallel.
[0105] Fig. 15 is a configuration diagram showing an optical communication system according to embodiment 12. In Fig. 15, the same reference numerals as those in Fig. 1, Fig. 3, and Fig. 5 to Fig. 14 indicate the same or corresponding parts, and detailed description thereof will be omitted. In the optical communication system shown in FIG. 15, a bandpass filter 3a is inserted in series with the optical amplifier 4 (or optical amplifier 4-n), and a bandpass filter 5a is inserted in series with the optical amplifier 6 (or optical amplifier 6-n). Bandpass filters 23 having different passing wavelength bands are inserted into each of the one or more communication light bypass fibers 21, and the passing wavelength bands of the respective bandpass filters 23 are different from the passing wavelength band of the bandpass filter 3a. Furthermore, bandpass filters 24 having different passing wavelength bands are inserted into each of the one or more communication light bypass fibers 22, and the passing wavelength bands of the respective bandpass filters 24 are different from the passing wavelength band of the bandpass filter 5a. This allows the communication devices 1, 1-m (m=1, . . . , M) and the associated devices 2, 2-n to transmit and receive a plurality of communication lights with different wavelengths.
[0106] In addition, the present disclosure allows for free combination of the respective embodiments, modification of any of the components of the respective embodiments, or omission of any of the components of the respective embodiments. [Industrial Applicability]
[0107] The present disclosure is suitable for optical communication systems. [Explanation of symbols]
[0108] 1 communication device, 2, 2-1 to 2-N opposing device, 3, 3-1' to 3-M' first optical fiber, 3-1 to 3-N first optical fiber after branching, 3a bandpass filter, 4, 4-1 to 4-N optical amplifier, 5, 5-1' to 5-M' second optical fiber, 5-1 to 5-N second optical fiber after branching, 5a bandpass filter, 6, 6-1 to 6-N optical amplifier, 7-1 to 7-G, 7-1-1 to 7-NG first bypass fiber, 7a wavelength division multiplexing filter, 7b wavelength division multiplexing coupler, 7c optical amplifier, 7d optical bandpass filter, 8-1 to 8-G, 8-1-1 to 8-NG second bypass fiber, 8a wavelength division multiplexing filter, 8b wavelength division multiplexing coupler, 8c optical amplifier, 8d optical bandpass filter, 9, 9-1 to 9-P sensor device, 10 Optical path switching device, 11 optical multiplexer / demultiplexer, 11a first optical multiplexer / demultiplexer, 11b second optical multiplexer / demultiplexer, 12 optical multiplexer / demultiplexer, 13 selection device, 14 optical terminator, 15 third optical fiber, 21, 22 communication optical bypass fibers, 23, 24 bandpass filters.
Claims
1. a first optical fiber for transmitting communication light transmitted from a communication device to a remote device; a second optical fiber for transmitting communication light transmitted from the opposite device to the communication device; a plurality of first bypass fibers that bypass optical amplifiers inserted in the first optical fiber; a plurality of second bypass fibers that bypass the optical amplifiers inserted in the second optical fiber; a sensor device that transmits sensor light to either the first optical fiber or the second optical fiber and receives backscattered light returned from either the first optical fiber or the second optical fiber; An optical communication system comprising:
2. There are N (N is an integer of 2 or more) opposing devices, an optical path switching device that branches each of the first optical fiber and the second optical fiber into N optical fibers, and connects each of the first optical fiber and the second optical fiber to a corresponding opposing device via each of the branched first optical fiber and the branched second optical fiber; as the first bypass fibers, a plurality of first bypass fibers that bypass optical amplifiers inserted in the first optical fibers after each branching; As the second bypass fibers, a plurality of second bypass fibers are provided to bypass optical amplifiers inserted in the second optical fibers after branching, respectively; 2. The optical communication system according to claim 1, further comprising:
3. There are M communication devices (M is an integer of 2 or more), 3. The optical communication system according to claim 2, further comprising an optical multiplexing / demultiplexing device that multiplexes communication light transmitted from any one or more of the M communication devices, outputs the multiplexed communication light to the optical path switching device, demultiplexes the communication light output from the optical path switching device, and outputs each demultiplexed communication light to any one of the M communication devices.
4. The optical multiplexing / demultiplexing device comprises:
4. The optical communication system according to claim 3, wherein sensor light transmitted from the sensor device is sent via the optical path switching device to either a first branched optical fiber or a second branched optical fiber, and backscattered light returning from either the first branched optical fiber or the second branched optical fiber is output to the sensor device.
5. There are P (P is an integer of 2 or more) sensor devices, The optical multiplexing / demultiplexing device comprises:
4. The optical communication system according to claim 3, wherein the sensor light transmitted from each of the P sensor devices is output to the optical path switching device, and the backscattered light output from the optical path switching device is output to the sensor device that transmitted the sensor light.
6. The optical multiplexing / demultiplexing device comprises:
4. The optical communication system according to claim 3, wherein, of the backscattered light output from said optical path switching device, backscattered light within a pass wavelength band is output to said sensor device, and backscattered light outside the pass wavelength band is blocked.
7. The optical multiplexing / demultiplexing device comprises: a first optical multiplexer / demultiplexer that multiplexes communication light transmitted from any one or more of the M communication devices, outputs the multiplexed communication light to the optical route switching device, and demultiplexes the communication light output from the optical route switching device, and outputs each demultiplexed communication light to any one of the M communication devices; 6. The optical communication system according to claim 5, further comprising a second optical multiplexer / demultiplexer that outputs sensor light transmitted from any one or more of the P sensor devices to the optical path switching device and outputs backscattered light output from the optical path switching device to the sensor device that transmitted the sensor light.
8. 6. The optical communication system according to claim 5, further comprising a selection device for connecting any one of said P sensor devices to said optical multiplexing / demultiplexing device.
9. 9. The optical communication system according to claim 8, wherein one end of said selection device is optically terminated.
10. 2. The optical communication system according to claim 1, wherein each of the first optical fiber and the second optical fiber is either a single-mode fiber, a single-core core wire of a multimode fiber, or a multi-core core wire.
11. The first bypass fiber comprises: a wavelength division multiplexing filter or a wavelength division multiplexing coupler is provided as a connection component for the first optical fiber; The second bypass fiber comprises:
2. The optical communication system according to claim 1, further comprising a wavelength division multiplexing filter or a wavelength division multiplexing coupler as a connecting component for said second optical fiber.
12. Each of the first bypass fiber and the second bypass fiber comprises:
2. The optical communication system according to claim 1, further comprising a bidirectional optical amplifier that does not include an optical isolator.
13. Each of the first bypass fiber and the second bypass fiber comprises:
2. The optical communication system according to claim 1, further comprising an optical bandpass filter that passes said sensor light and said backscattered light.
14. The optical route switching device includes:
3. The optical communication system according to claim 2, wherein a third optical fiber is connected in addition to the first branched optical fiber and the branched optical fiber.
15. 2. The optical communication system according to claim 1, wherein a plurality of optical amplifiers inserted into the first optical fiber are connected in parallel, and a plurality of optical amplifiers inserted into the second optical fiber are connected in parallel.
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