Optical fiber sensor and optical fiber sensor system
10859408 ยท 2020-12-08
Assignee
Inventors
Cpc classification
G01D5/35383
PHYSICS
G01B11/00
PHYSICS
H04B10/6162
ELECTRICITY
G01B11/26
PHYSICS
H04B10/07
ELECTRICITY
H04B10/85
ELECTRICITY
International classification
H04B10/07
ELECTRICITY
G01B11/00
PHYSICS
G01B11/26
PHYSICS
Abstract
An optical fiber changes a polarization state of a propagating light when at least one of a vibration and a displacement occurs. An optical transmitter inputs a first wavelength light to the optical fiber via a separator, and an optical transmitter inputs a second wavelength light to the optical fiber via a separator. The first and second wavelength lights propagated through the optical fiber in mutually opposite directions are respectively received by optical receivers (13 and 12) via the separators (18 and 17), and a fluctuation of a polarization is detected in polarization fluctuation detectors (16 and 15). A data processing device collects data indicating the fluctuation of the polarization detected by the polarization fluctuation detector and data indicating the fluctuation of the polarization detected by the polarization fluctuation detector.
Claims
1. An optical fiber sensor system comprising: an optical fiber sensor including: an optical fiber configured to change a polarization state of a propagating light when at least one of a vibration and a displacement occurs; a first optical transmitter arranged at one end of the optical fiber and configured to input a first wavelength light to the optical fiber; a first optical receiver arranged at other end of the optical fiber and configured to receive the first wavelength light propagated through the optical fiber in a first direction from the one end toward the other end; a first polarization fluctuation detector configured to detect a fluctuation of a polarization of a light received by the first optical receiver; a second optical transmitter arranged at the other end of the optical fiber and configured to input a second wavelength light to the optical fiber; a second optical receiver arranged at the one end of the optical fiber and configured to receive the second wavelength light propagated through the optical fiber in a second direction opposite to the first direction; a second polarization fluctuation detector configured to detect a fluctuation of a polarization of a light received by the second optical receiver; a first separator arranged between the one end of the optical fiber and the first optical transmitter and the second optical receiver, and configured to input the first wavelength light output from the first optical transmitter to the optical fiber and to cause the second optical receiver to receive the second wavelength light propagated through the optical fiber in the second direction; and a second separator arranged between the other end of the optical fiber and the second optical transmitter and the first optical receiver, and configured to input the second wavelength light output from the second optical transmitter to the optical fiber and to cause the first optical receiver to receive the first wavelength light propagated through the optical fiber in the first direction, and a data processing device configured to collect a first polarization fluctuation data indicating a fluctuation of a polarization detected in the first polarization fluctuation detector and a second polarization fluctuation data indicating a fluctuation of a polarization detected in the second polarization fluctuation detector.
2. The optical fiber sensor system according to claim 1, wherein the first separator includes: a first port connected to the one end of the optical fiber; a second port connected to the first optical transmitter; a third port connected to the second optical receiver; and a first wavelength multiplexer/demultiplexer configured to pass the first wavelength light from the second port to the first port and pass the second wavelength light from the first port to the third port, and wherein the second separator includes: a fourth port connected to the other end of the optical fiber; a fifth port connected to the second optical transmitter; a sixth port connected to the first optical receiver; and a second wavelength multiplexer/demultiplexer configured to pass the first wavelength light from the fourth port to the sixth port and pass the second wavelength light from the fifth port to the fourth port.
3. The optical fiber sensor system according to claim 1, wherein the first optical receiver includes: a first polarization component detector configured to detect a light component in a first polarization direction of the first wavelength light propagated through the optical fiber in the first direction; and a second polarization component detector configured to detect a light component in a second polarization direction orthogonal to the first polarization direction, and wherein the second optical receiver includes: a third polarization component detector configured to detect a light component in a third polarization direction of the second wavelength light propagated through the optical fiber in the second direction; and a fourth polarization component detector configured to detect a light component in a fourth polarization direction orthogonal to the third polarization direction.
4. The optical fiber sensor system according to claim 3, wherein the first optical receiver further includes a first polarization separator configured to branch the light component in the first polarization direction in the first wavelength light propagated through the optical fiber to the first polarization component detector and branch the light component in the second polarization direction to the second polarization component detector, and wherein the second optical receiver further includes a second polarization separator configured to branch the light component in the third polarization direction in the second wavelength light propagated through the optical fiber to the third polarization component detector and branch the light component in the fourth polarization direction to the fourth polarization component detector.
5. The optical fiber sensor system according to claim 4, wherein the first polarization separator includes a first polarization beam splitter configured to transmit one of a light in the first polarization direction and a light in the second polarization direction and reflect other of the light in the first polarization direction and the light in the second polarization direction, and wherein the second polarization separator includes a second polarization beam splitter configured to transmit one of a light in the third polarization direction and a light in the fourth polarization direction and reflect other of the light in the third polarization direction and the light in the fourth polarization direction.
6. The optical fiber system according to claim 3, wherein the first polarization fluctuation detector includes a first polarization rotation detector configured to detect a rotation of a polarization plane in the first wavelength light propagated through the optical fiber based on the light component in the first polarization direction detected by the first polarization component detector and the light component in the second polarization direction detected by the second polarization detector, and wherein the second polarization fluctuation detector further includes a polarization rotation detector configured to detect a rotation of a polarization plane in the second wavelength light propagated through optical fiber based on the light component in the third polarization direction detected by the third polarization component detector and the light component in the fourth polarization direction detected by the fourth polarization component detector.
7. The optical fiber sensor system according to claim 1, wherein the optical fiber further serves as an optical fiber used in an optical signal transmission system for transmitting and receiving optical signals.
8. The optical fiber sensor system according to claim 7, wherein a plurality of optical signal transceivers each configured to transmit and receive the optical signal are provided at both ends of the optical fiber, and wherein a portion of the plurality of the optical signal transceivers arranged at one end of the optical fiber is used as the first optical transmitter and the second optical receiver, and a portion of the plurality of the optical signal transceiver arranged at the other end of the optical fiber is used as the second optical transmitter and the first optical receiver.
9. The optical fiber sensor system according to claim 8, wherein the optical signal transmission system transmits and receives polarization multiplexed optical signals using a digital coherent optical communication system, and the optical signal transceiver includes a digital coherent optical receiver.
10. The optical fiber sensor system according to claim 9, wherein the digital coherent optical receiver arranged at the one end of the optical fiber is used as the second optical receiver, and the digital coherent optical receiver arranged at the other end of the optical fiber is used as the first optical receiver.
11. The optical fiber sensor system according to claim 10, wherein the digital coherent optical receiver includes: a polarization separator configured to separate the polarization multiplexed optical signal into two polarization components orthogonal to each other; an optical/electrical converter configured to convert each of the separated polarization component into an electric signal; a signal converter configured to convert the converted electric signal of each of the polarization components into a digital signal; and a digital signal processor configured to perform a predetermined process for the digital signal.
12. The optical fiber sensor system according to claim 11, wherein the polarization separator and the optical/electrical converter are used as the first optical receiver and the second optical receiver.
13. The optical fiber sensor system according to claim 12, wherein the first polarization fluctuation detector and the second polarization fluctuation detector detect the fluctuation of the polarization based on the converted electric signal of each of the polarization components.
14. The optical fiber sensor system according to claim 12, wherein the signal process performed in the digital signal processor includes a polarization separation signal process, and wherein the first polarization fluctuation detector and the second polarization fluctuation detector detect the fluctuation of the polarization based on an polarization angle calculated in the polarization separation signal process.
15. The optical fiber sensor system according to claim 14, wherein the digital signal processor includes a register accessible from an external device and writes the polarization angle calculated in the polarization separating signal process into the register.
16. The optical fiber sensor system according to claim 7, wherein the optical signal transmission system transmits the optical signal in a plurality of channels using a wavelength division multiplexing system, and a portion of the plurality of the channels is used in the optical fiber sensor.
17. The optical fiber sensor system according to claim 1, wherein the data processing device includes a first data processing device configured to collect the first polarization fluctuation data from the first polarization fluctuation detector; a second data processing device configured to collect the second polarization fluctuation data from the second polarization fluctuation detector; and a third data processing device configured to collect the first polarization fluctuation data and the second polarization fluctuation data from the first data processing device and the second data processing device.
18. The optical fiber sensor system according to claim 17, wherein the first data processing device imparts a timestamp to the first polarization fluctuation data and the second data processing device imparts a timestamp to the second polarization fluctuation data.
19. The optical fiber sensor system according to claim 1, wherein the data processing device includes a position identification unit configured to identify a position at which at least one of the vibration and the displacement occurs in the optical fiber based on the first polarization fluctuation data and the second polarization fluctuation data.
20. An optical fiber sensor comprising: an optical fiber configured to change a polarization state of a propagating light when at least one of a vibration and a displacement occurs; a first optical transmitter arranged at one end of the optical fiber and configured to input a first wavelength light to the optical fiber; a first optical receiver arranged at other end of the optical fiber and configured to receive the first wavelength light propagated through the optical fiber in a first direction from the one end toward the other end; a first polarization fluctuation detector configured to detect a fluctuation of a polarization of a light received by the first optical receiver; a second optical transmitter arranged at the other end of the optical fiber and configured to input a second wavelength light to the optical fiber; a second optical receiver arranged at the one end of the optical fiber and configured to receive the second wavelength light propagated through the optical fiber in a second direction opposite to the first direction; a second polarization fluctuation detector configured to detect a fluctuation of a polarization of a light received by the second optical receiver; a first wavelength multiplexer/demultiplexer arranged between the one end of the optical fiber and the first optical transmitter and the second optical receiver, and configured to input the first wavelength light output from the first optical transmitter to the optical fiber and to cause the second optical receiver to receive the second wavelength light propagated through the optical fiber in the second direction; a second wavelength multiplexer/demultiplexer arranged between the other end of the optical fiber and the second optical transmitter and the first optical receiver, and configured to input the second wavelength light output from the second optical transmitter to the optical fiber and to cause the first optical receiver to receive the first wavelength light propagated through the optical fiber in the first direction.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(14) Prior to describing embodiments of the present disclosure, an overview of the present disclosure will be described.
(15) The optical fiber 19 is an optical fiber for propagating (guiding) a light, and an optical fiber which changes a polarization state of the propagating light when at least one of a vibration and a displacement occurs. In the optical fiber sensor 21, the optical transmitter 11, the optical receiver 13, the polarization fluctuation detector 15, and the separator 17 are arranged at one end of the optical fiber 19, and the optical transmitter 12, the optical receiver 14, the polarization fluctuation detector 16, and the separator 18 are arranged at the other end of the optical fiber 19.
(16) The optical transmitter (first optical transmitter) 11 outputs a first wavelength light and inputs the first wavelength light to the optical fiber 19 from the one end of the optical fiber 19. The first wavelength light output from the first optical transmitter 11 is propagated in the optical fiber 19 in a direction (first direction) from the one end to the other end. The optical receiver (first optical receiver) 14 receives the light propagated in the optical fiber 19 in the first direction at the other end of the optical fiber 19. The polarization fluctuation detector (first polarization fluctuation detector) 16 detects a fluctuation of the polarization of the light received by the first optical receiver 14.
(17) The optical transmitter (second optical transmitter) 12 outputs a second wavelength light, the wavelength of which is different from that of the first wavelength light, and input the second wavelength light to the optical fiber from the other end of the optical fiber 19. The second wavelength light output from the second optical transmitter 12 is propagated in the optical fiber 19 in a direction (second direction) from the other end to the one end. The optical receiver (second optical receiver) 13 receives the light propagated in the optical fiber 19 in the second direction at the one end of the optical fiber 19. The polarization fluctuation detector (second polarization fluctuation detector) 15 detects a fluctuation of the polarization of the light received by the second optical receiver 13.
(18) The separator (first separator) 17 is arranged between the one end of the optical fiber 19 and the first optical transmitter 11 and the second optical transmitter 13. The first separator 17 inputs the first wavelength light output from the first optical transmitter 11 to the optical fiber 19 and causes the second optical receiver 13 to receive the second wavelength light propagated through the optical fiber 19 in the second direction. The separator (second separator) 18 is arranged at the other end of the optical fiber 19 and the second optical transmitter 12 and the first optical receiver 14. The second separator 18 inputs the second wavelength light output from the second optical transmitter 12 to the optical fiber 19 and causes the first optical receiver 14 to receive the first wavelength light propagated through the optical fiber 19 in the first direction.
(19) The data processing device 22 collects, from the first polarization fluctuation detector 16 and the second polarization fluctuation detector 15, data (polarization fluctuation data) indicating the fluctuation of the polarization detected by these detectors. The data processing device 22 collects the first polarization fluctuation data from the first polarization fluctuation detector 16 and collects the second polarization fluctuation data from the second polarization fluctuation detector 15. The data processing device 22 may identify a position at which at least one of the vibration and the displacement occurs in the optical fiber 19 based on the first polarization fluctuation data and the second polarization fluctuation data.
(20) In the present disclosure, the optical fiber sensor 21 has the first optical transmitter 11 which outputs the first wavelength light at the one end of the optical fiber 19 and the second optical transmitter which outputs the second wavelength light at the other end of the optical fiber 19. In the optical fiber 21, the first wavelength light and the second wavelength light are propagated in the optical fiber 19 in mutually opposite directions. The first wavelength light propagated in the optical fiber 19 in the first direction is received by the first optical receiver 14 and the second wavelength light propagated in the second direction is received by the second optical receiver 13.
(21) When an external force and or like is applied to the optical fiber 19 and at least one of a vibration and a displacement occurs in the optical fiber 19, the polarization state of the first wavelength light and the second wavelength light propagated in the optical fiber 19 respectively fluctuate, the polarization state of the lights received by the first optical receiver 14 and the second optical receiver 13 changes. By detecting this change in the polarization state using the first polarization fluctuation detector 16 and the second polarization fluctuation detector 15, it is possible to detect that at least one of the vibration and the displacement has occurred in a portion where the optical fiber 19 is laid. Further, by acquiring the time difference between the fluctuation of the polarization which has occurred in the light propagated in the first direction and the fluctuation of the polarization which has occurred in the light propagated in the second direction, it is possible to identify the position at which at least one of the vibration and the displacement have occurred.
(22) In the optical fiber sensor 21 according to the present disclosure, the wavelength of the light propagated in the optical fiber 19 in the first direction is different from the wavelength of the light propagated in the optical fiber 19 in the second direction. Accordingly, it is possible to suppress the noise such as the coherent beat noise from being superimposed on the light propagated in the optical fiber. Therefore, when two lights are propagated in a single optical fiber in mutually opposite directions in the optical fiber sensor 21, it is possible to suppress the influence of the noise on the fluctuation of the polarization detected by the polarization detector.
(23) Hereinafter, the embodiments of the present disclosure will be described in detail with reference to the drawings.
(24) In the optical fiber sensor system 100, each set of the first optical transceivers 101-1 to 101-n, the second optical transceivers 102-1 to 102-n, and the optical fibers 103-1 to 103-n composes an optical fiber sensor. In the following description, the plurality of the first optical transceivers 101-1 to 101-n, the plurality of the second optical transceivers 102-1 to 102-n, and the plurality of the optical fibers 103-1 to 103-n may be collectively referred as the first optical transceiver 101, the second optical transceiver 102, and the optical fiber 103, when it is not necessary to specifically differentiate them.
(25) The optical fiber 103 is an optical fiber for propagating a light therethrough, and changes the polarization state of the light propagated therethrough when at least one of a vibration and a displacement occurs. For example, a single mode optical fiber is used for the optical fiber 103.
(26) The first optical transceiver 101 and the second optical transceiver 102 are configured as devices capable of transmitting an optical signal (emitting a light) and receiving an optical signal (receiving a light). The first optical transceiver 101 includes an optical transmitter 111, an optical receiver 112, a polarization angle detector 113, and a wavelength multiplexer/demultiplexer 114. The second optical transceiver 102 includes an optical transmitter 121, an optical receiver 122, a polarization angle detector 123, and a wavelength multiplexer/demultiplexer 124. The first optical transceiver 101 is arranged at one end of the optical fiber 103 and the second optical transceiver 102 is arranged at the other end of the optical fiber 103.
(27) The optical transmitter (first optical transmitter) 111 included in the first optical transceiver 101 input a first wave length light to the optical fiber 103 from the one end of the optical fiber 103. The first optical transmitter 111 includes a light source which emits the first wavelength light. The first optical transmitter 111 includes, for example, a semiconductor laser emitting a linearly polarized laser light, the wavelength of which is the first wavelength. The semiconductor laser is configured as, for example, a CW (Continuous Wave) laser which emits a laser light with constant power. The first wavelength light output from the first optical transmitter 111 is propagated in the optical fiber 103 in a direction (first direction) from the one end to the other end.
(28) The optical transmitter (second optical transmitter) 121 included in the second optical transceiver 102 inputs a second wavelength light to the optical fiber 103 from the other end of the optical fiber 103. The second wavelength is different from the first wavelength light. The second optical transmitter 121 includes a light source which emits the second wavelength light. The second optical transmitter 121 includes, for example, a semiconductor lager emitting a linearly polarized laser light, the wavelength of which is the second wavelength. The semiconductor laser is configured as, for example, a CW laser which emits a laser light with constant power. The second wavelength light output from the second transmitter 121 is propagated in the optical fiber 103 in a direction (second direction) from the other end to the one end.
(29) The optical receiver (first receiver) 122 included in the second transceiver 102 receives the light propagated in the optical fiber 102 in the first direction at the other end of the optical fiber 103. The first optical receiver 122 includes, for example, two light detectors for detecting two polarized components orthogonal to each other, which are included in the received first wavelength light. The first optical receiver 122 includes, for example, a light detector (first polarization component detector) for detecting one polarization components (first polarization component) out of the polarization components orthogonal to each other and a light detector (second polarization component detector) for detecting the other polarization component (second polarization component). Each light detector outputs an electrical signal corresponding to the amount of the detected polarization component.
(30) The polarization angle detector (first polarization angle detector) 123 detects an angle (polarization angle) of the polarization plane of the light received by the first optical receiver 122 as a fluctuation which occurred in the first wavelength light. The first polarization angle detector 123 detects the polarization angle, for example, based on the electrical signal corresponding to the amount of the first polarization component and the electrical signal corresponding to the amount of the second polarization component, which are output from the first optical receiver 122. The first polarization angle detector 123 may be configured as, for example, a DSP (digital signal processor) or an LSI (large-scale integrated circuit).
(31) The optical receiver (second optical receiver) 112 included in the first optical transceiver 101 receives the light propagated in the optical fiber 103 in the second direction at the one end of the optical fiber 103. The first optical receiver 122 includes, for example, two light detectors for detecting two polarized components orthogonal to each other, which are included in the received second wavelength light. The second optical receiver 112 includes, for example, a light detector (third polarization component detector) for detecting one polarization components (third polarization component) out of the polarization components orthogonal to each other and a light detector (fourth polarization component detector) for detecting the other polarization component (fourth polarization component). Each light detector outputs an electrical signal corresponding to the amount of the detected polarization component.
(32) The polarization angle detector (second polarization angle detector) 113 detects an angle (polarization angle) of the polarization plane of the light received by the second optical receiver 112 as a fluctuation which occurred in the second wavelength light. The second polarization angle detector 113 detects the polarization angle, for example, based on the electrical signal corresponding to the amount of the third polarization component and the electrical signal corresponding to the amount of the fourth polarization component, which are output from the second optical receiver 112. The first polarization angle detector 123 may be configured as, for example, a DSP or an LSI.
(33) The wavelength multiplexer/demultiplexer (first wavelength multiplexer/demultiplexer) 114 included in the first optical transceiver 101 is arranged between the one end of the optical fiber 103 and the first optical transmitter 111 and the second optical receiver 112. The first wavelength multiplexer/demultiplexer 114 inputs the first wavelength light output from the first optical transmitter 111 to the optical fiber 103, and causes the second optical receiver 112 to receive the second wavelength light propagated through the optical fiber 103 in the second direction. For example, a wavelength division multiplex coupler (WDM coupler) is used for the first wavelength multiplexer/demultiplexer 114.
(34) The wavelength multiplexer/demultiplexer (second wavelength multiplexer/demultiplexer) 124 included in the second optical transceiver 102 is arranged between the other end of the optical fiber 103 and the second optical transmitter 121 and the first optical receiver 122. The second wavelength multiplexer/demultiplexer 124 inputs the second wavelength light output from the second optical transmitter 121 to the optical fiber 103, and causes the first optical receiver 122 to receive the first wavelength light propagated through the optical fiber 103 in the first direction. For example, a WDM coupler is used for the first wavelength multiplexer/demultiplexer 114.
(35) The server 106 collets, from the first polarization angle detector 123, data (first polarization angle data) indicating the angle of the polarization plane detected in the first polarization angle detector 123 as data indicating the fluctuation of the polarization which has occurred in the first wavelength light. The server 106 collects the first polarization angle data from the first polarization angle detector 123 included in each of the plurality of the second optical transceivers 102-1 to 102-n. The server 106 is connected to first polarization angle detector 123 included in each of the second optical transceivers 102 by a wired network or a wireless network, and collets the first polarization angle data through these networks.
(36) The server 105 collets, from the second polarization angle detector 113, data (second polarization angle data) indicating the angle of the polarization plane detected in the second polarization angle detector 113 as data indicating the fluctuation of the polarization which has occurred in the second wavelength light. The server 105 collects the second polarization angle data from the second polarization angle detector 113 included in each of the plurality of the first optical transceivers 101-1 to 101-n. The server 104 collects the first polarization angle data and the second polarization angle data via the server 105 and server 106. The server 105 is connected to second polarization angle detector 113 included in each of the first optical transceivers 101 by a wired network or a wireless network, and collets the first polarization angle data through these networks.
(37) It should be noted that the optical transmitter 111, the optical receiver 112, polarization angle detector 113, and the wavelength multiplexer/demutiplexer 114, which are included in the first optical transceiver 101, respectively correspond to the first optical transmitter 11, the second optical receiver 13, the polarization fluctuation detector 15, and the separator 17, which are shown in
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(39) The second optical receiver 112 includes a polarization separator 115 and light detectors 116 and 117. The polarization separator 115 separates the light input therein into light components in two polarization direction orthogonal to each other. The polarization separator 115 branches the light component in one polarization direction (third polarization direction) included in the second wavelength light propagated through the optical fiber 103 to the light detector 116, and branches the light component in the other polarization direction (fourth polarization component) to the light detector 117. The polarization separator 115 includes, for example, a polarization beam splitter which transmits one of the light in the third polarization direction and the light in the fourth polarization direction and reflects the other of the lights.
(40) The light detector 116 (third polarization component detector) detects the light component of the second wavelength light in the third polarization direction, which is input thereto via the polarization separator 115. The light detector 117 (fourth polarization component detector) detects the light component of the second wavelength light in the fourth polarization direction, which is input thereto via the polarization separator 115. The light detectors 116 and 117 include, for example, an optical/electrical conversion element such as a PD (photodetector) element.
(41) The second polarization angle detector 113 detects the rotation of the polarization plane of the second wavelength light propagated through the optical fiber 103 based on the light component in the third polarization direction detected by the light detector 116 and the light component in the fourth polarization direction detected by the light detector 117. The second polarization angle detector 113 detects the rotation of the polarization plane, for example, based on the ratio of light component in the third polarization direction detected by the light detector 116 to the light component in the fourth polarization direction detected by the light detector 117.
(42) The configuration of the second optical transceiver 102 is the same as the configuration of the first optical transceiver 101 shown in
(43) The first optical receiver 122 included in the second optical transceiver 102 includes a polarization separator and two light detectors, similar to the second optical receiver 112 shown in
(44) One light detector (first polarization component detector) out of the two light detectors included in the first optical receiver 122 detects the light component of the first wavelength light in the first polarization direction, which is input thereto via the above-mentioned polarization separator. The other light detector (second polarization component detector) detects the light component of the first wavelength light in the second polarization direction, which is input thereto via the above-mentioned polarization separator. These light detectors include, for example, an optical/electrical conversion element such as a PD element.
(45) The first polarization angle detector 123 detects the rotation of the polarization plane of the first wavelength light propagated through the optical fiber 103 based on the light component in the first polarization direction detected by the light detector 116 and the light component in the second polarization direction detected by the light detector 117. The first polarization angle detector 123 detects the rotation of the polarization plane based on, for example, the ratio of the light component in the first polarization direction detected by the above first polarization component detector to the light component in the second polarization direction detected by the above second polarization component detector.
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(47) The servers 104 to 106 correspond to the data processing device 22 shown in
(48) The server 106, which is a first data processing device, includes a data collection unit 161, a timestamp impartment unit 162, and a data transmission unit 163. The data collection unit (data collection means) 161 collects the first polarization angle data from the first polarization angle detector 123 included in each of the second optical transceivers 102-1 to 102-n. The timestamp impartment unit (timestamp impartment means) 162 imparts a timestamp to the first polarization angle data collected by the data collection unit 161.
(49) The data transmission unit (data transmission means) 163 transmits the first polarization angle data to the server 104. The server 104 and the server 106 are connected via, for example, a wired network or a wireless network, and the data transmission unit 163 transmits the first polarization angle data to the server 104 via such networks.
(50) For example, the data transmission unit 163 transmits, in real time, the first polarization angle data which varies from moment to moment to the server 104. Alternatively, when the first polarization angle data collected by the data collection unit 161 is stored in a not shown storage device, the data transmission unit 163 may read out the first polarization angle data in a predetermined time period from the storage device and transmit the first polarization angle data to the server 104. Further, the data transmission unit 163 may determine whether the change in the first polarization angle data is greater than or equal to a threshold value. When it is determined that the first polarization angle data is greater than or equal to the threshold value, the data transmission unit 163 may transmit, to the server 104, the first polarization angle data in a predetermined time period including before and after the change.
(51) The server 105, which is a second data processing device, includes a data collection unit 151, a timestamp impartment unit 152, and a data transmission unit 153. The functions of the data collection unit 151, the timestamp impartment unit 152, and the data transmission unit 153 are similar as the functions of the data collection unit 161, the timestamp impartment unit 162, and the data transmission unit 163 in the server 106, except that data is changed from the first polarization angle data to the second polarization angle data. That is to say, the data collection unit 151 collects the second polarization angle data from the second polarization angle detector 113 included in each of the first optical transceivers 101-1 to 101-n. The timestamp impartment unit 152 imparts a timestamp to the second polarization angle data collected by the data collection unit 151. The data transmission unit 153 transmits the second polarization angle data to the server 104.
(52) The sever 104, which is a third data processing device, includes a data reception unit 141, a vibration/displacement detection unit 142, and a position identification unit 143. The data reception unit (data reception means) 141 receives the first polarization angle data from the server 106 and receives the second polarization angle data from the sever 105. The vibration/displacement detection unit (vibration/displacement detection means) 142 detect the occurrence of at least one of a vibration and a displacement in the optical fiber 103 based on at least one of the first polarization angle data and the second polarization angle data received by the data reception unit 141.
(53) The position identification unit (position identification means) 143 identifies the position at which at least one of the vibration and the displacement occurs in the optical fiber 103 based on a difference between the detection timing of the at least one of the vibration and the displacement detected based on the first polarization angle data and the detection timing of the at least one of the vibration and the displacement detected based on the second polarization angle data. The difference of the detection timings can be obtained from the timestamp imparted to the first polarization angle data and the timestamp imparted to the second polarization angle data.
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(55) When the polarization state of the light propagated through the optical fiber 103 is changed, a ratio between one polarization component (X polarization component) of the linearly polarized light input from the optical transmitter to the optical fiber 103 detected by the light detector 116 and the other polarization component (Y polarization component) detected by the light detector 117 is changed. For example, as shown in
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(57) The speed of the light propagated through the optical fiber has a finite value, and the second polarization angle detector 113 (refer to
(58) In the present embodiment, the first optical transmitter 111 which outputs the first wavelength light is arranged at the one end of the optical fiber 103 and the second optical transmitter 121 which outputs the second wavelength light is arranged at the other end of the optical fiber 103. The first wavelength light and the second wavelength light are propagated through the optical fiber 103 in mutually opposite directions. The first wavelength light is received by the first optical receiver 122 arranged at the other end of the optical fiber 103 and the second wavelength light is received by the second optical receiver 112 arranged at the one end of the optical fiber 103. The optical fiber 103 changes the polarization state of the propagating light when at least one a vibration and a displacement occurs. By detecting this change in the polarization state by the first polarization angle detector 123 and the second polarization angle detector 113, it is possible to detect that at least one of the vibration and the displacement occurs in the optical fiber 103. Further, it is possible to identify the position where the at least one of the vibration and the displacement occurs based on the detection timing difference between the first polarization angle detector 123 and the second polarization angle detector 113.
(59) In the present embodiment, in particular, the wavelength of the light propagated in the first direction from the one end to the other end in the optical fiber 103 is different from the wavelength of the light propagated in the second direction from the other end to the one end in the optical fiber 103. Accordingly, in the optical fiber sensor according to the present embodiment, the coherent beat noise, which is problematic when the configuration of the Patent Literature 2 is employed, is not generated. Therefore, it is possible for the optical fiber sensor according to the present embodiment to suppress the influence of the noise compared to the optical fiber sensor disclosed in Patent Literature 2. In the optical fiber sensor according to the present embodiment, by suppressing the influence of the noise, it is possible to more accurately detect the fluctuation of the polarization than the optical fiber sensor disclosed in the Patent Literature 2, and it is possible to more accurately acquire the difference between the detection timing in the first polarization angle detector 123 and the detection timing in the second polarization angle detector 113 than the optical fiber sensor disclosed in the Patent Literature 2.
(60) Next, a second embodiment of the present disclosure will be described.
(61) In the present embodiment, the optical fiber 205 used in the optical fiber sensor 200 may further serve as an optical fiber used in an optical signal transmission system for transmitting and receiving optical signals. In other words, an optical fiber used for transmitting and receiving optical signals in an optical signal transmission system may be used in the optical fiber sensor 200. The optical signal transmission system may be a system, for example, in which polarization multiplexed optical signals are transmitted and received using the digital coherent optical communication system.
(62) In the optical fiber 200 according to the present embodiment, the optical signal transceiver (first optical signal transceiver) 201 arranged at one end of the optical fiber 205 includes an optical signal transmitter 211 and an optical signal receiver 212. The optical signal transceiver 202 arranged at the other end of the optical fiber 205 includes an optical signal transmitter 221 and an optical signal receiver 222.
(63) The optical signal transmitter (first optical signal transmitter) 211 included in the first optical transceiver 201 modulates the first wavelength light by a given modulation method according to data being transmitted to generate an optical signal (first optical signal), and causes the first optical signal to input to the one end of the optical fiber 205. The first optical signal output from the first optical signal transmitter 211 is propagated thorough the optical fiber 205 from the one end to the other end, and is received by the second optical signal transceiver 202 arranged at the other end of the optical fiber 205. The optical signal receiver (first optical signal receiver) 222 included in the second optical signal transceiver 202 receives the first optical signal and demodulates the transmitted data using a demodulation method corresponding to the modulation method of the transmitter side.
(64) The optical signal transmitter (second optical signal transmitter) 221 included in the second optical signal transceiver 202 modulates the second wavelength light by a given modulation method according to data being transmitted to generate an optical signal (second optical signal), and causes the second optical signal to input the other end of the optical fiber 205. The second optical signal output from the second optical signal transmitter 221 is propagated through the optical fiber 205 from the other end to the one end, and is received by the first optical signal transceiver 201 arranged at the one end of the optical fiber 205. The optical signal receiver (second optical signal receiver) 212 included in the first optical signal transceiver 201 receives the second optical signal and demodulates the transmitted data using a demodulation method corresponding to the modulation method of the transmitter side.
(65) In the present embodiment, the first optical signal transmitter 201 (the first optical signal transmitter 211 and the second optical signal receiver 212 included therein) may be used as the first optical transmitter 111 and the second optical receiver 112 (refer to
(66) The polarization angle detector (first polarization angle detector) 204 detects an angle of the polarization plane of the first optical signal based on the light components in the polarization directions orthogonal to each other of the first optical signal detected by the first optical signal receiver 222. The polarization angle detector (second polarization angle detector) 203 detects an angle of the polarization plane of the second optical signal based on the light component in the polarization directions orthogonal to each other of the second optical signal detected by the second optical receiver 212. The first polarization angle detector 204 and the second polarization angle detector 203 respectively correspond to the first polarization angle detector 123 and the second polarization angle detector 113 shown in
(67) It should be noted that, although one first optical signal transceiver 201 and one second optical signal transceiver 202 are shown in
(68) In the present embodiment, the optical signal transmission system may be a system in in which polarization multiplexed optical signals are transmitted and received using the digital coherent optical communication system. In this case, the first optical signal receiver 222 and the second optical signal receiver 212 may be configured as digital coherent optical receivers. The digital coherent optical receiver typically includes: a polarization separation unit (polarization separation means) for separating the polarization multiplexed optical signal into two polarization components orthogonal to each other; an optical/electrical conversion unit (optical/electrical conversion means) for converting each separated polarization component into an electric signal; a signal conversion unit (signal conversion means) for converting the converted electric signal of each polarization component into a digital signal; and a digital signal processing unit (digital signal processing means) for performing a predetermined process including a polarization separation signal process for the digital signal. In the digital coherent optical receiver, in particular, portions of the polarization separation unit and the optical/electrical conversion unit may be used as the first optical receiver 122 and the second optical receiver 112 (refer to
(69)
(70) The polarization beam splitter 251 corresponds to the polarization separation unit and separates the polarization multiplexed optical signal of the first wavelength received through the optical fiber 205 (refer to
(71) The optical/electrical converters (O/E) 256 to 259 are the optical/electrical conversion units and convert lights into electrical signals. The optical/electrical converters 256 and 257 are optical/electrical converters corresponding to the X polarization component, and the optical/electrical converters 258 and 259 are optical/electrical converters corresponding to the Y polarization component. The optical/electrical converter 256 converts the detection lights of the I component of the X polarization into electrical signals, and the optical/electrical converter 257 converts the detection light of the Q component of the X polarization into electrical signals. The optical/electrical converter 258 converts the detection lights of the I component of the Y polarization into electrical signals, and the optical/electrical converter 259 converts the detection lights of the Q component of the Y polarization into electrical signals.
(72) An adder 265 adds the electrical signal corresponding to the detection light of the I component of the X polarization output from the optical/electrical converter 256 and the electrical signal corresponding to the detection light of the Q component of the X polarization output from the optical/electrical converter 257. An adder 266 adds the electrical signal corresponding to the detection light of the I component of the Y polarization output from the optical/electrical converter 258 and the electrical signal corresponding to the detection light of the Q component of the Y polarization output from the optical/electrical converter 259.
(73) The adder 265 outputs the electrical signal corresponding to the X polarization component included in the polarization multiplexed optical signal to the polarization angle detector 204. The electrical signal output from the adder 265 corresponds to the electrical signal output from the light detector 116 shown in
(74) The AD converters 260 to 263 correspond to the signal conversion units and convert analog electrical signals into digital signals. The AD converters 260 and 261 are AD converters corresponding to the X polarization component, and the AD converters 262 and 263 are AD converters corresponding to the Y polarization component. The AD converter 260 converts the electrical signal corresponding to the I component of the detection light of the X polarization output from the optical/electrical converter 256 into the digital signal. The AD converter 261 converts the electrical signal corresponding to the Q component of the detection light of the X polarization output from the optical/electrical converter 257 into the digital signal. The AD converter 262 converts the electrical signal corresponding to the I component of the detection light of the Y polarization output from the optical/electrical converter 258 into the digital signal. The AD converter 263 converts the electrical signal corresponding to the Q component of the detection light of the Y polarization output from the optical/electrical converter 259 into the digital signal.
(75) The digital signal processing unit 264 performs a digital signal process on the digital signals output from the AD converters 260 to 263. The digital signal process performed in the digital signal processing unit 264 includes a polarization separation signal process. Further, the digital signal process performed in the digital signal processing unit 264 includes a process for reproducing the transmission data modulated at transmission source of the polarization multiplexed optical signal as reception data based on the input digital signal. The digital signal processing unit 264 may be configured, for example, using a DSP, an LSI, or the like.
(76) It should be noted that the configuration of the second optical signal receiver 212 (refer to
(77) In the above description, an example is described in which the polarization angle detectors 203 and 204 detect the rotation of the polarization angle based on the electrical signals of the polarization components photoelectrically converted. However, the present disclosure is not limited thereto. The polarization angle detectors 203 and 204 may detect the rotation of the polarization angle based on the polarization angle calculated in the polarization separation signal process performed in the digital signal processing unit 264, instead of detecting the rotation of the polarization angle using the photoelectrically converted electrical signal.
(78)
(79)
(80) Referring back to
(81) In the present embodiment, the optical fiber 205 is used for the optical signal transmission system as well. In the present embodiment, for example, a portion of the plurality of channels in the optical signal transmission system can be used for the optical fiber sensor 200. In this case, it is not required to lay an optical fiber dedicated for the optical fiber sensor 200. Further, in the present embodiment, the optical signal transceivers 201 and 202 that are used for transmitting and receiving optical signals are used for the optical fiber sensor 200. In the present embodiment, for example, it is possible to detect at least one of the vibration and the displacement which has occurred in the optical fiber using an unused channel among the plurality of channels in the optical signal transmission system. In this case, while transmitting and receiving the optical signals, it is possible to detect at least one of the vibration and the displacement which has occurred in the optical fiber used for transmitting and receiving the optical signals.
(82) Hereinafter, usage examples of the optical fiber sensor system will be described. Firstly, a first usage example will be described.
(83) It should be noted that, although not shown in
(84) In the first usage example, for example, a vibration propagated to the optical fiber 103 when an automobile or the like passes through the road can be detected. Further, when the three optical fibers 103-1 to 103 are laid at different portion of the bridge (road) as shown in
(85) Next, a second usage example will be described.
(86) In the second usage example, for example, the vibration or displacement which has occurred in overhead lines including the optical fiber 103 and the like can be detected. Further, when an earthquake occurs, its quake can be detected using the optical fiber 103. In the second usage example, when an earthquake or the like occurs, it is possible to analyze the difference in quaking depending on the difference in location by detecting the vibration or displacement at each of optical fibers branched into a plurality of houses.
(87) Next, a third usage example will be described.
(88) The optical signal transmission system is configured as a system in which, for example, polarization multiplexed optical signals are transmitted and received using the digital coherent optical communication method. Each of the network nodes N1 to N5 transmit and receive the polarization multiplexed optical signals between the opposing other node via optical fiber 205. The optical signal transceiver 201 and the polarization angle detector 203 (refer to
(89) In the third usage example, the vibration or the displacement which has occurred in the optical fiber 205 connecting between the nodes can be detected. Further, when the vibration or the displacement is detected, it is possible to analyze whether the vibration or the displacement occurs in a specific areas or the vibration or the displacement occurs in whole areas.
(90) It should be noted that, in each of the above described embodiments, an example in which the optical transmitter (optical signal transmitter) inputs a continuous wave light to the optical fiber constituting the optical fiber sensor has been described. However, the present disclosure is not limited thereto. The light output from the optical transmitter is not limited to a light with constant power. The optical transmitter may input, to the optical fiber, a light, the intensity of which changes with time. For example, when the fluctuation of the polarization plane is detected at the receiver side based on the ratio of the components of two polarization directions orthogonal to each other, the rotation of the polarization angle can be detected even if the light intensity is not constant at the transmitter side.
(91) In the above described embodiments, some of the elements described as means (unit) or the like may be implemented as hardware, or may be implemented by causing a computer (CPU) to execute a voluntary program. Various programs can be stored and provided to a computer using any type of non-transitory computer readable media. Non-transitory computer readable media include any type of tangible storage media. Examples of non-transitory computer readable media include magnetic storage media (such as floppy disks, magnetic tapes, hard disk drives, etc.), optical magnetic storage media (e.g. magneto-optical disks), optical disc media (such as CD (Compact Disc) or DVD (digital versatile disk), semiconductor memories (such as Mask ROM (Read only Memory), PROM (Programmable ROM), EPROM (Erasable PROM), flash ROM, RAM (Random Access Memory). These programs may be provided to a computer using any type of transitory computer readable media. Examples of transitory computer readable media include electric signals, optical signals, and electromagnetic waves. Transitory computer readable media can be used to provide programs to a computer via a wired communication line (e.g., electric wires, and optical fibers) or a wireless communication line.
(92) While the present disclosure has been described with reference to exemplary embodiments, the present disclosure should not be limited by the above described embodiments. Various modifications, which can be recognized within the scope of the present disclosure by those skilled in the art, may be made to configurations or details of the present disclosure.
(93) For example, the whole or part of the embodiments disclosed above can be described as, but not limited to, the following supplementary notes.
(94) (Supplementary Note 1)
(95) An optical fiber sensor system comprising:
(96) an optical fiber sensor including:
(97) an optical fiber configured to change a polarization state of a propagating light when at least one of a vibration and a displacement occurs;
(98) a first optical transmitter arranged at one end of the optical fiber and configured to input a first wavelength light to the optical fiber;
(99) a first optical receiver arranged at other end of the optical fiber and configured to receive the first wavelength light propagated through the optical fiber in a first direction from the one end toward the other end;
(100) a first polarization fluctuation detector configured to detect a fluctuation of a polarization of a light received by the first optical receiver;
(101) a second optical transmitter arranged at the other end of the optical fiber and configured to input a second wavelength light to the optical fiber;
(102) a second optical receiver arranged at the one end of the optical fiber and configured to receive the second wavelength light propagated through the optical fiber in a second direction opposite to the first direction;
(103) a second polarization fluctuation detector configured to detect a fluctuation of a polarization of a light received by the second optical receiver;
(104) a first separator arranged between the one end of the optical fiber and the first optical transmitter and the second optical receiver, and configured to input the first wavelength light output from the first optical transmitter to the optical fiber and to cause the second optical receiver to receive the second wavelength light propagated through the optical fiber in the second direction; and
(105) a second separator arranged between the other end of the optical fiber and the second optical transmitter and the first optical receiver, and configured to input the second wavelength light output from the second optical transmitter to the optical fiber and to cause the first optical receiver to receive the first wavelength light propagated through the optical fiber in the first direction, and
(106) a data processing device configured to collect a first polarization fluctuation data indicating a fluctuation of a polarization detected in the first polarization fluctuation detector and a second polarization fluctuation data indicating a fluctuation of a polarization detected in the second polarization fluctuation detector.
(107) (Supplementary Note 2)
(108) The optical fiber sensor system according to Supplementary note 1, wherein the first separator includes:
(109) a first port connected to the one end of the optical fiber;
(110) a second port connected to the first optical transmitter;
(111) a third port connected to the second optical receiver; and
(112) a first wavelength multiplexer/demultiplexer configured to pass the first wavelength light from the second port to the first port and pass the second wavelength light from the first port to the third port,
(113) and wherein the second separator includes:
(114) a fourth port connected to the other end of the optical fiber;
(115) a fifth port connected to the second optical transmitter;
(116) a sixth port connected to the first optical receiver; and
(117) a second wavelength multiplexer/demultiplexer configured to pass the first wavelength light from the fourth port to the sixth port and pass the second wavelength light from the fifth port to the fourth port.
(118) (Supplementary Note 3)
(119) The optical fiber sensor system according to Supplementary note 1 or 2, wherein the first optical receiver includes:
(120) a first polarization component detector configured to detect a light component in a first polarization direction of the first wavelength light propagated through the optical fiber in the first direction; and
(121) a second polarization component detector configured to detect a light component in a second polarization direction orthogonal to the first polarization direction,
(122) and wherein the second optical receiver includes:
(123) a third polarization component detector configured to detect a light component in a third polarization direction of the second wavelength light propagated through the optical fiber in the second direction; and
(124) a fourth polarization component detector configured to detect a light component in a fourth polarization direction orthogonal to the third polarization direction.
(125) (Supplementary Note 4)
(126) The optical fiber sensor system according to Supplementary note 3, wherein the first optical receiver further includes a first polarization separator configured to branch the light component in the first polarization direction in the first wavelength light propagated through the optical fiber to the first polarization component detector and branch the light component in the second polarization direction to the second polarization component detector,
(127) and wherein the second optical receiver further includes a second polarization separator configured to branch the light component in the third polarization direction in the second wavelength light propagated through the optical fiber to the third polarization component detector and branch the light component in the fourth polarization direction to the fourth polarization component detector.
(128) (Supplementary Note 5)
(129) The optical fiber sensor system according to Supplementary note 4, wherein the first polarization separator includes a first polarization beam splitter configured to transmit one of a light in the first polarization direction and a light in the second polarization direction and reflect other of the light in the first polarization direction and the light in the second polarization direction,
(130) and wherein the second polarization separator includes a second polarization beam splitter configured to transmit one of a light in the third polarization direction and a light in the fourth polarization direction and reflect other of the light in the third polarization direction and the light in the fourth polarization direction.
(131) (Supplementary Note 6)
(132) The optical fiber system according to any one of Supplementary notes 3 to 5, wherein the first polarization fluctuation detector includes a first polarization rotation detector configured to detect a rotation of a polarization plane in the first wavelength light propagated through the optical fiber based on the light component in the first polarization direction detected by the first polarization component detector and the light component in the second polarization direction detected by the second polarization detector,
(133) and wherein the second polarization fluctuation detector further includes a polarization rotation detector configured to detect a rotation of a polarization plane in the second wavelength light propagated through optical fiber based on the light component in the third polarization direction detected by the third polarization component detector and the light component in the fourth polarization direction detected by the fourth polarization component detector.
(134) (Supplementary Note 7)
(135) The optical fiber sensor system according to Supplementary note 6, wherein the first polarization rotation detector detects the rotation of the polarization plane based on a ratio of the detected light component in the first polarization direction to the detected light component in the second polarization direction,
(136) and wherein the second polarization rotation detector detects the rotation of the polarization plane based on a ratio of the detected light component in the third polarization direction to the detected light component in the fourth polarization direction.
(137) (Supplementary Note 8)
(138) The optical fiber sensor system according to any one of Supplementary notes 1 to 7, wherein the first optical transmitter includes a first light source configured to output a linearly polarized light and the second optical transmitter includes a second light source configured to output a linearly polarized light.
(139) (Supplementary Note 9)
(140) The optical fiber sensor system according to any one of Supplementary notes 1 to 8, wherein a plurality of the optical fiber sensors are provide therein.
(141) (Supplementary Note 10)
(142) The optical fiber sensor system according to any one of Supplementary notes 1 to 9, wherein the optical fiber further serves as an optical fiber used in an optical signal transmission system for transmitting and receiving optical signals.
(143) (Supplementary Note 11)
(144) The optical fiber sensor system according to Supplementary note 10, wherein a plurality of optical signal transceivers each configured to transmit and receive the optical signal are provided at both ends of the optical fiber,
(145) and wherein a portion of the plurality of the optical signal transceivers arranged at one end of the optical fiber is used as the first optical transmitter and the second optical receiver, and a portion of the plurality of the optical signal transceiver arranged at the other end of the optical fiber is used as the second optical transmitter and the first optical receiver.
(146) (Supplementary Note 12)
(147) The optical fiber sensor system according to Supplementary note 11, wherein the optical signal transmission system transmits and receives polarization multiplexed optical signals using a digital coherent optical communication system, and the optical signal transceiver includes a digital coherent optical receiver.
(148) (Supplementary Note 13)
(149) The optical fiber sensor system according to Supplementary note 12, wherein the digital coherent optical receiver arranged at the one end of the optical fiber is used as the second optical receiver, and the digital coherent optical receiver arranged at the other end of the optical fiber is used as the first optical receiver.
(150) (Supplementary Note 14)
(151) The optical fiber sensor system according to Supplementary note 13, wherein the digital coherent optical receiver includes: a polarization separation means for separating the polarization multiplexed optical signal into two polarization components orthogonal to each other; an optical/electrical conversion means for converting each of the separated polarization component into an electric signal; a signal conversion means for converting the converted electric signal of each of the polarization components into a digital signal; and a digital signal processing means for performing a predetermined process for the digital signal.
(152) (Supplementary Note 15)
(153) The optical fiber sensor system according to Supplementary note 14, wherein the polarization separation means and the optical/electrical conversion means are used as the first optical receiver and the second optical receiver.
(154) (Supplementary Note 16)
(155) The optical fiber sensor system according to Supplementary note 15, wherein the first polarization fluctuation detector and the second polarization fluctuation detector detect the fluctuation of the polarization based on the converted electric signal of each of the polarization components.
(156) (Supplementary Note 17)
(157) The optical fiber sensor system according to Supplementary note 15, wherein the signal process performed in the digital signal processing means includes a polarization separation signal process, and wherein the first polarization fluctuation detector and the second polarization fluctuation detector detect the fluctuation of the polarization based on an polarization angle calculated in the polarization separation signal process.
(158) (Supplementary Note 18)
(159) The optical fiber sensor system according to Supplementary note 17, wherein the digital signal processing means includes a register accessible from an external device and writes the polarization angle calculated in the polarization separating signal process into the register.
(160) (Supplementary Note 19)
(161) The optical fiber sensor system according to any one of Supplementary notes 10 to 18, wherein the optical signal transmission system transmits the optical signal in a plurality of channels using a wavelength division multiplexing system, and a portion of the plurality of the channels is used in the optical fiber sensor.
(162) (Supplementary Note 20)
(163) The optical fiber sensor system according to any one of Supplementary notes 1 to 19, wherein the data processing device includes a first data processing device configured to collect the first polarization fluctuation data from the first polarization fluctuation detector; a second data processing device configured to collect the second polarization fluctuation data from the second polarization fluctuation detector; and a third data processing device configured to collect the first polarization fluctuation data and the second polarization fluctuation data from the first data processing device and the second data processing device.
(164) (Supplementary Note 21)
(165) The optical fiber sensor system according to Supplementary note 20, wherein the first data processing device imparts a timestamp to the first polarization fluctuation data and the second data processing device imparts a timestamp to the second polarization fluctuation data.
(166) (Supplementary Note 22)
(167) The optical fiber sensor system according to any one of Supplementary notes 1 to 21, wherein the data processing device includes a position identification means for identifying a position at which at least one of the vibration and the displacement occurs in the optical fiber based on the first polarization fluctuation data and the second polarization fluctuation data.
(168) (Supplementary Note 23)
(169) An optical fiber sensor comprising:
(170) an optical fiber configured to change a polarization state of a propagating light when at least one of a vibration and a displacement occurs;
(171) a first optical transmitter arranged at one end of the optical fiber and configured to input a first wavelength light to the optical fiber;
(172) a first optical receiver arranged at other end of the optical fiber and configured to receive the first wavelength light propagated through the optical fiber in a first direction from the one end toward the other end;
(173) a first polarization fluctuation detector configured to detect a fluctuation of a polarization of a light received by the first optical receiver;
(174) a second optical transmitter arranged at the other end of the optical fiber and configured to input a second wavelength light to the optical fiber;
(175) a second optical receiver arranged at the one end of the optical fiber and configured to receive the second wavelength light propagated through the optical fiber in a second direction opposite to the first direction;
(176) a second polarization fluctuation detector configured to detect a fluctuation of a polarization of a light received by the second optical receiver;
(177) a first wavelength multiplexer/demultiplexer arranged between the one end of the optical fiber and the first optical transmitter and the second optical receiver, and configured to input the first wavelength light output from the first optical transmitter to the optical fiber and to cause the second optical receiver to receive the second wavelength light propagated through the optical fiber in the second direction;
(178) a second wavelength multiplexer/demultiplexer arranged between the other end of the optical fiber and the second optical transmitter and the first optical receiver, and configured to input the second wavelength light output from the second optical transmitter to the optical fiber and to cause the first optical receiver to receive the first wavelength light propagated through the optical fiber in the first direction.
(179) The present application is based upon and claims the benefit of priority from Japanese Patent Application No. 2016-080768, filed on Apr. 14, 2016, the entire contents of which are hereby incorporated by reference.
REFERENCE SIGNS LIST
(180) 10: OPTICAL FIBER SENSOR SYSTEM 21: OPTICAL FIBER SENSOR 11, 12: OPTICAL TRANSMITTER 13, 14: OPTICAL RECEIVER 15, 16: POLARIZATION FLUCTUATION DETECTOR 19: OPTICAL FIBER 21: OPTICAL FIBER SENSOR 22: DATA PROCESSING DEVICE 100: OPTICAL FIBER SENSOR SYSTEM 101: FIRST OPTICAL TRANSCEIVER 102: SECOND OPTICAL TRANSCEIVER 103: OPTICAL FIBER 104-106: SERVER 111: OPTICAL TRANSMITTER 112: OPTICAL RECEIVER 113: POLARIZATION ANGLE DETECTOR 114: WAVELENGTH MULTIPLEXER/DEMULTIPLEXER 116, 117: LIGHT DETECTOR 121: OPTICAL TRANSMITTER 122: OPTICAL RECEIVER 123: POLARIZATION ANGLE DETECTOR 124: WAVELENGTH MULTIPLEXER/DEMULTIPLEXER 141: DATA RECEPTION UNIT 142: VIBRATION/DISPLACEMENT DETECTION UNIT 143: POSITION IDENTIFICATION UNIT 151, 161: DATA COLLECTION UNIT 152, 162: TIMESTAMP IMPARTMENT UNIT 153, 163: DATA TRANSMISSION UNIT 200: OPTICAL FIBER SENSOR 201, 202: OPTICAL SIGNAL TRANSCEIVER 203, 204: POLARIZATION ANGLE DETECTOR 205: OPTICAL FIBER 211, 221: OPTICAL SIGNAL TRANSMITTER 212, 222: OPTICAL SIGNAL RECEIVER 251: POLARIZATION BEAM SPLITTER 252: WAVELENGTH PLATE 253, 254: OPTICAL MIXER 256-259: OPTICAL/ELECTRICAL CONVERTER 260-263: AD CONVERTER 264: DIGITAL SIGNAL PROCESSING UNIT 265, 266: ADDER 271: WAVELENGTH DISPERSION COMPENSATION UNIT 272: POLARIZATION SEPARATION UNIT 273, 274: OPTICAL FREQUENCY SYNCHRONIZATION UNIT 275, 276: PHASE SYNCHRONIZATION UNIT 277: REGISTER