WO2020206199A1 - Aerial fiber optical cable localization using distributed sensing - Google Patents

Aerial fiber optical cable localization using distributed sensing Download PDF

Info

Publication number
WO2020206199A1
WO2020206199A1 PCT/US2020/026505 US2020026505W WO2020206199A1 WO 2020206199 A1 WO2020206199 A1 WO 2020206199A1 US 2020026505 W US2020026505 W US 2020026505W WO 2020206199 A1 WO2020206199 A1 WO 2020206199A1
Authority
WO
WIPO (PCT)
Prior art keywords
optical cable
aerial
fiber optical
das
aerial fiber
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/US2020/026505
Other languages
French (fr)
Other versions
WO2020206199A9 (en
Inventor
Yue Tian
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
NEC Corp
NEC Laboratories America Inc
Original Assignee
NEC Corp
NEC Laboratories America Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by NEC Corp, NEC Laboratories America Inc filed Critical NEC Corp
Publication of WO2020206199A1 publication Critical patent/WO2020206199A1/en
Publication of WO2020206199A9 publication Critical patent/WO2020206199A9/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01HMEASUREMENT OF MECHANICAL VIBRATIONS OR ULTRASONIC, SONIC OR INFRASONIC WAVES
    • G01H9/00Measuring mechanical vibrations or ultrasonic, sonic or infrasonic waves by using radiation-sensitive means, e.g. optical means
    • G01H9/004Measuring mechanical vibrations or ultrasonic, sonic or infrasonic waves by using radiation-sensitive means, e.g. optical means using fibre optic sensors
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/44Mechanical structures for providing tensile strength and external protection for fibres, e.g. optical transmission cables
    • G02B6/4401Optical cables
    • G02B6/4415Cables for special applications
    • G02B6/4416Heterogeneous cables
    • G02B6/4422Heterogeneous cables of the overhead type
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/46Processes or apparatus adapted for installing or repairing optical fibres or optical cables
    • G02B6/48Overhead installation
    • G02B6/483Installation of aerial type
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/46Processes or apparatus adapted for installing or repairing optical fibres or optical cables
    • G02B6/56Processes for repairing optical cables
    • G02B6/562Processes for repairing optical cables locatable, e.g. using magnetic means

Definitions

  • This disclosure relates generally to optical communications and optical sensing systems, methods and structures. More particularly, it describes the determination of aerial cable localization using distributed sensing.
  • aerial fiber optic cables are used to provide data communications services to both residential and commercial sites. And while aerial cables are usually attached to utility poles and exhibit a fixed route, it is nevertheless difficult for telecommunications carriers and service providers to estimate or otherwise determine aerial cable length distributions on a geographic map solely based on pole-to-pole distance(s) and poles’ geographic locations - due in part to extra cable loops/coils deployed in the aerial configurations for possible future drop points, branches, and general redundancy.
  • DAS distributed acoustic sensing
  • systems, methods, and structures according to aspects of the present disclosure advantageously achieve aerial fiber optical cable localization using distributed acoustic sensing (DAS) that advantageously determines the locality of electrical transformers affixed to utility poles along with the aerial fiber optical cable as well as any length(s) of fiber optical cable between the poles.
  • DAS distributed acoustic sensing
  • Further aspects employ survey manned or unmanned, aerial or terrestrial survey vehicles that acoustically excite locations along the fiber optical cable and associate those DAS excitations with global positioning location (GPS).
  • GPS global positioning location
  • FIG. 1 shows a schematic diagram of an illustrative aerial fiber optic cable arrangement on utility poles along with high-voltage power line(s) and distributed acoustic sensing (DAS) interrogator according to aspects of the present disclosure
  • FIG. 2 shows a schematic diagram of an illustrative aerial fiber optical cable arrangement on utility poles along with high-voltage power line(s) and distributed acoustic sensing (DAS) interrogator being stimulated by a mobile stimulator according to aspects of the present disclosure;
  • DAS distributed acoustic sensing
  • FIG. 3 is a flow diagram illustrating overall process/method according to aspects of the present disclosure.
  • FIG. 4 is a flow diagram illustrating an additional process/method according to aspects of the present disclosure.
  • FIGs comprising the drawing are not drawn to scale.
  • DAS distributed acoustic sensing
  • FIG. 1 shows a schematic diagram of an illustrative aerial fiber optic cable arrangement supported on utility poles along with high-voltage power line(s) and distributed acoustic sensing (DAS) interrogator according to aspects of the present disclosure
  • a utility pole may be referred to as a transmission pose, telephone pole, telecommunication pole, power pole, hydro pole, telegraph pole, or telegraph post, depending upon its application and particular language dialect in an area in which it is installed.
  • transformers that convert a relatively high- voltage to a lower-voltage for the purposes of electrical power distribution.
  • the transformers while shown as bring mounted or suspended on the utility poles, may sometimes be installed nearby on the ground, with connecting power cables dropped from the poles to the transformer(s).
  • the transformers intrinsically vibrate and generate mechanical disturbances (i.e., sounds/noise) at specific frequencies.
  • sounds/noise/vibrations may be transmitted - via the utility pole and/or connecting cable - to the aerial cable attached to the pole(s).
  • a fundamental frequency of the noise from the transformer is substantially twice that of the alternating current (AC) frequency, i.e., 12Hz noise for 60 Hz AC power, or 100 Hz noise for 50 Hz AC power. Therefore, by detecting the peak locations of the transformer vibration frequencies (e.g., 120Hz or 100Hz) along the aerial cable, the poles supporting (hosting) both the transformer and the aerial cable can be located along the aerial cable. Combining the geophysical location information of these poles and the aerial cable lengths measured between these poles, the aerial cable route and length distribution may be geographically mapped.
  • AC alternating current
  • our inventive methodology may be applied to existing power/pole/telecommunications/optical fiber cable installations to provide such functionality.
  • the overall methodology may be described by:
  • DAS distributed acoustic sensing
  • pole m and pole n have transformers suspended therefrom.
  • DAS can detect two peaks along the aerial optical cable, one each corresponding to the individual transformers.
  • One peak - generated by transformer on pole m is illustratively located at x meters from DAS interrogator.
  • the other peak - generated by transformer on pole n - is illustratively located at y meters away from the DAS interrogator. Since these peaks are excited/produced by the poles with transformers, the geophysical locations of these poles with transformers are the geophysical locations of the peaks along the length of aerial cable.
  • the aerial cable length(s) between these poles are obtained.
  • the aerial cable length between pole m and pole n is (y-x) meters.
  • the aerial cable route and length distribution between these poles with transformers may be geographically mapped.
  • a digital computer that may be programmed to control the DAS operation, receive, and filter the returned DAS signals, store geolocations of the poles and determine any associations between the returned DAS signals and the geolocations of those poles as well as determine length(s) of fiber between the poles.
  • a survey vehicle with acoustic signal generator (e.g. speaker) and GPS logger is used as a moving acoustic excitation source.
  • acoustic signal generator e.g. speaker
  • GPS logger is used as a moving acoustic excitation source.
  • the survey vehicle is shown as a terrestrial/ground vehicle (automobile), it may also be performed by aerial drone. Either type of survey vehicle may advantageously be manned or unmanned. Additionally, should a survey route run along a railway, a railway vehicle may likewise be employed as survey vehicle.
  • the generated acoustic signal can be picked up by the aerial cable through air and detected by DAS.
  • the location of this acoustic signal along the aerial cable i.e. the aerial cable length from this acoustic signal to DAS interrogator, is sufficiently close to the GPS location, i.e. geographic location, of the survey vehicle.
  • the DAS can sense the acoustic signal location moving along the aerial cable as well.
  • Constantly generate the signature signal by operating the acoustic generator (e.g. speaker) on the survey vehicle while simultaneously logging a GPS location of the vehicle.
  • acoustic generator e.g. speaker
  • the survey vehicle may not be able to move directly under or above the aerial cable, its GPS location may include distance error(s) relative to the actual geographic location of the aerial cable.
  • the GPS route of the aerial cable can be corrected by referring to the geographic route of the utility poles, since the aerial cable is supported by these poles and its route is limited and connected by these poles.
  • the aerial cable route and length distribution can be geographically mapped accurately.
  • e can advantageously determine the geophysical locations - is then matching distributed fiber sensing generally describes systems and methods that include an interrogator system - conveniently and/or centrally located inside a station - which actively generates optical signals, introduces those signals into an optical fiber, and subsequently detects reflected (backscattered) signals that originate along the fiber.
  • such fiber acts as a passive link that passes or otherwise conveys environmental information back to the interrogator via the reflected signal(s).
  • the interrogator derives information about the environmental conditions along the entire fiber.

Landscapes

  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
  • Position Fixing By Use Of Radio Waves (AREA)
  • Locating Faults (AREA)
  • Light Guides In General And Applications Therefor (AREA)

Abstract

Aspects of the present disclosure describe aerial fiber optical cable localization using distributed acoustic sensing (DAS) that advantageously may determine the locality of electrical transformers affixed to utility poles along with the aerial fiber optical cable as well as any length(s) of fiber optical cable between the poles. Further aspects employ survey manned or unmanned, aerial or terrestrial survey vehicles that acoustically excite locations along the fiber optical cable and associate those DAS excitations with global positioning location (GPS).

Description

AERIAL FIBER OPTICAL CABLE LOCALIZATION USING DISTRIBUTED
SENSING
CROSS REFERENCE
[0001] This disclosure claims the benefit of United States Provisional Patent
Application Serial No. 62/829,669 filed 04/05/2019 and United States Utility Patent Application Serial No. 16/828, 105 filed 04/02/2020 the entire contents of which is incorporated by reference as if set forth at length herein.
TECHNICAL FIELD
[0002] This disclosure relates generally to optical communications and optical sensing systems, methods and structures. More particularly, it describes the determination of aerial cable localization using distributed sensing.
BACKGROUND
[0003] As is known aerial fiber optic cables are used to provide data communications services to both residential and commercial sites. And while aerial cables are usually attached to utility poles and exhibit a fixed route, it is nevertheless difficult for telecommunications carriers and service providers to estimate or otherwise determine aerial cable length distributions on a geographic map solely based on pole-to-pole distance(s) and poles’ geographic locations - due in part to extra cable loops/coils deployed in the aerial configurations for possible future drop points, branches, and general redundancy.
SUMMARY
[0004] An advance in the art is made according to aspects of the present disclosure directed to aerial cable localization using distributed acoustic sensing (DAS) technology.
[0005] In sharp contrast to the prior art, systems, methods, and structures according to aspects of the present disclosure advantageously achieve aerial fiber optical cable localization using distributed acoustic sensing (DAS) that advantageously determines the locality of electrical transformers affixed to utility poles along with the aerial fiber optical cable as well as any length(s) of fiber optical cable between the poles. Further aspects employ survey manned or unmanned, aerial or terrestrial survey vehicles that acoustically excite locations along the fiber optical cable and associate those DAS excitations with global positioning location (GPS).
BRIEF DESCRIPTION OF THE DRAWING
[0006] A more complete understanding of the present disclosure may be realized by reference to the accompanying drawing in which:
[0007] FIG. 1 shows a schematic diagram of an illustrative aerial fiber optic cable arrangement on utility poles along with high-voltage power line(s) and distributed acoustic sensing (DAS) interrogator according to aspects of the present disclosure;
[0008] FIG. 2 shows a schematic diagram of an illustrative aerial fiber optical cable arrangement on utility poles along with high-voltage power line(s) and distributed acoustic sensing (DAS) interrogator being stimulated by a mobile stimulator according to aspects of the present disclosure;
[0009] FIG. 3 is a flow diagram illustrating overall process/method according to aspects of the present disclosure; and
[0010] FIG. 4 is a flow diagram illustrating an additional process/method according to aspects of the present disclosure.
[0011] The illustrative embodiments are described more fully by the Figures and detailed description. Embodiments according to this disclosure may, however, be embodied in various forms and are not limited to specific or illustrative embodiments described in the drawing and detailed description. DESCRIPTION
[0012] The following merely illustrates the principles of the disclosure. It will thus be appreciated that those skilled in the art will be able to devise various arrangements which, although not explicitly described or shown herein, embody the principles of the disclosure and are included within its spirit and scope.
[0013] Furthermore, all examples and conditional language recited herein are intended to be only for pedagogical purposes to aid the reader in understanding the principles of the disclosure and the concepts contributed by the inventor(s) to furthering the art and are to be construed as being without limitation to such specifically recited examples and conditions.
[0014] Moreover, all statements herein reciting principles, aspects, and embodiments of the disclosure, as well as specific examples thereof, are intended to encompass both structural and functional equivalents thereof. Additionally, it is intended that such equivalents include both currently known equivalents as well as equivalents developed in the future, i.e., any elements developed that perform the same function, regardless of structure.
[0015] Thus, for example, it will be appreciated by those skilled in the art that any block diagrams herein represent conceptual views of illustrative circuitry embodying the principles of the disclosure.
[0016] Unless otherwise explicitly specified herein, the FIGs comprising the drawing are not drawn to scale.
[0017] We begin by noting once more that systems, methods, and structures according to aspects of the present disclosure advantageously and inventively employ distributed acoustic sensing (DAS) to measure/determine locations with specific acoustic excitations along an aerial fiber optic cable. Generally, by associating the measured locations along the aerial cable and the geographic locations of those acoustic excitations, the aerial cable route and length distribution may then be geographically mapped. As used herein, the“location along the aerial cable” is the aerial cable length between a location under test and a DAS interrogator connected to and communicating with the aerial cable.
[0018] FIG. 1 shows a schematic diagram of an illustrative aerial fiber optic cable arrangement supported on utility poles along with high-voltage power line(s) and distributed acoustic sensing (DAS) interrogator according to aspects of the present disclosure;
[0019] As may be observed from that figure, high-voltage power lines are shown as supported on utility poles - a column or post used to support overhead (aerial) power lines and various other public utilities such as electrical cable, fiber optic cable, and related equipment such as transformers and street lights. A utility pole may be referred to as a transmission pose, telephone pole, telecommunication pole, power pole, hydro pole, telegraph pole, or telegraph post, depending upon its application and particular language dialect in an area in which it is installed.
[0020] Shown further in that figure are transformers that convert a relatively high- voltage to a lower-voltage for the purposes of electrical power distribution. The transformers - while shown as bring mounted or suspended on the utility poles, may sometimes be installed nearby on the ground, with connecting power cables dropped from the poles to the transformer(s).
[0021] As those skilled in the art will appreciate, due to magnetostriction effect(s), the transformers intrinsically vibrate and generate mechanical disturbances (i.e., sounds/noise) at specific frequencies. Such sounds/noise/vibrations may be transmitted - via the utility pole and/or connecting cable - to the aerial cable attached to the pole(s).
[0022] Note that a fundamental frequency of the noise from the transformer is substantially twice that of the alternating current (AC) frequency, i.e., 12Hz noise for 60 Hz AC power, or 100 Hz noise for 50 Hz AC power. Therefore, by detecting the peak locations of the transformer vibration frequencies (e.g., 120Hz or 100Hz) along the aerial cable, the poles supporting (hosting) both the transformer and the aerial cable can be located along the aerial cable. Combining the geophysical location information of these poles and the aerial cable lengths measured between these poles, the aerial cable route and length distribution may be geographically mapped.
[0023] Advantageously, our inventive methodology may be applied to existing power/pole/telecommunications/optical fiber cable installations to provide such functionality. Operationally, the overall methodology may be described by:
1. Providing a distributed acoustic sensing (DAS) interrogator and coupling same to an existing aerial fiber optic cable;
2. Using DAS, continuously monitor an acoustic signal along the entire aerial fiber optic cable;
3. Using a real-time bandpass filter centered at 120Hz (or 100Hz if AC frequency is 50 HZ), continuously filter the DAS signal other than 120 Hz;
4. From the filtered DAS signal, determine constantly present signal peaks and their representative location(s) along the aerial cable measured by DAS.
5. Determine, from the constantly present signal peaks and their representative locations, the geophysical locations of the poles with transformers.
[0024] We note that with respect to the above methodology, it may be observed that as shown in FIG. 1, pole m and pole n have transformers suspended therefrom. As such, DAS can detect two peaks along the aerial optical cable, one each corresponding to the individual transformers. One peak - generated by transformer on pole m is illustratively located at x meters from DAS interrogator. The other peak - generated by transformer on pole n - is illustratively located at y meters away from the DAS interrogator. Since these peaks are excited/produced by the poles with transformers, the geophysical locations of these poles with transformers are the geophysical locations of the peaks along the length of aerial cable. By matching the geophysical locations of these poles suspending the transformers responsible for producing these peaks with the peak locations along the aerial cable, the aerial cable length(s) between these poles are obtained. For example, in FIG. 1, the aerial cable length between pole m and pole n is (y-x) meters.
[0025] Accordingly, the aerial cable route and length distribution between these poles with transformers may be geographically mapped. Those skilled in the art will of course appreciate that the above method is performed on a digital computer, that may be programmed to control the DAS operation, receive, and filter the returned DAS signals, store geolocations of the poles and determine any associations between the returned DAS signals and the geolocations of those poles as well as determine length(s) of fiber between the poles.
[0026] Advantageously, we now disclose another method according to aspects of the present disclosure whereby we employ a survey vehicle - manned or unmanned - aerial (drone) or terrestrial (automobile) - equipped with an acoustic signal generator e.g., a speaker, as an acoustic excitation source. The operation setup and principles are schematically illustrated in FIG. 2.
[0027] Operationally, a survey vehicle with acoustic signal generator (e.g. speaker) and GPS logger is used as a moving acoustic excitation source. Note that while the survey vehicle is shown as a terrestrial/ground vehicle (automobile), it may also be performed by aerial drone. Either type of survey vehicle may advantageously be manned or unmanned. Additionally, should a survey route run along a railway, a railway vehicle may likewise be employed as survey vehicle.
[0028] During operation, when the survey vehicle is proximate/sufficiently close to the aerial cable, the generated acoustic signal can be picked up by the aerial cable through air and detected by DAS. The location of this acoustic signal along the aerial cable, i.e. the aerial cable length from this acoustic signal to DAS interrogator, is sufficiently close to the GPS location, i.e. geographic location, of the survey vehicle. If the survey vehicle moves along the aerial cable route with constant acoustic signal excitation, the DAS can sense the acoustic signal location moving along the aerial cable as well. By matching the moving location of acoustic signal along the aerial cable and the moving GPS locations of the survey vehicle, the aerial cable route and length distribution can be geographically mapped.
[0029] Operationally, the overall procedure and implementation may proceed as follows:
1. Connect DAS interrogator to the aerial fiber optic cable.
2. Using DAS, continuously monitor the acoustic signal along the whole aerial fiber optic cable;
3. Find one frequency (or multiple frequencies) not constantly present in the DAS signal along the aerial fiber optic cable. Use this frequency as signature signal for acoustic excitation by the survey vehicle. Alternatively, a combination of multiple frequencies may be used as a signature signal.
4. Constantly generate the signature signal by operating the acoustic generator (e.g. speaker) on the survey vehicle while simultaneously logging a GPS location of the vehicle. Use DAS to constantly track the location of the signature signal along the aerial cable, by frequency filtering and pattern matching.
5. Drive/relocate the survey vehicle along the aerial cable route, sufficiently near the aerial cable route, so the aerial cable can be excited (picked up) by the acoustic signature signal propagating through air.
6. Match the moving signature signal location along the aerial cable and the GPS location of the survey vehicle in time domain for the aerial cabled route of interest.
7. Since the survey vehicle may not be able to move directly under or above the aerial cable, its GPS location may include distance error(s) relative to the actual geographic location of the aerial cable. To minimize this error, the GPS route of the aerial cable can be corrected by referring to the geographic route of the utility poles, since the aerial cable is supported by these poles and its route is limited and connected by these poles.
8. As a result, the aerial cable route and length distribution can be geographically mapped accurately. [0030] e can advantageously determine the geophysical locations - is then matching distributed fiber sensing generally describes systems and methods that include an interrogator system - conveniently and/or centrally located inside a station - which actively generates optical signals, introduces those signals into an optical fiber, and subsequently detects reflected (backscattered) signals that originate along the fiber. Operationally, such fiber acts as a passive link that passes or otherwise conveys environmental information back to the interrogator via the reflected signal(s). By processing the reflected/received signal(s), the interrogator derives information about the environmental conditions along the entire fiber.
[0031] While we have presented this disclosure using some specific examples, those skilled in the art will recognize that our teachings are not so limited. Accordingly, this disclosure should be only limited by the scope of the claims attached hereto.

Claims

Claims:
1. A method of localizing aerial fiber optical cable comprising:
using distributed acoustic sensing (DAS), monitor the aerial fiber optical cable; apply a real time bandpass filter to returned DAS signals;
determine constant peaks exhibited in the returned, filtered DAS signals;
determine location(s) of electrical transformers situated on poles suspending the aerial fiber optical cable from the exhibited constant peaks.
2. The method of claim 1 further comprising:
determining length(s) of the aerial fiber optical cable between the poles.
3. The method of claim 1 wherein the determined location(s) of the electrical transformers is a geophysical location.
4. The method of claim 1 wherein the electrical transformers acoustically excite the fiber optical cable and the returned DAS signals are indicative of the acoustical excitation.
5. The method of claim 4 wherein the bandpass filter is one selected from the group consisting of 60Hz bandpass filter and 50Hz bandpass filter.
6. A method of localizing aerial fiber optical cable comprising:
using distributed acoustic sensing (DAS), monitor the aerial fiber optical cable; apply a signature signal at different points along a length of aerial fiber optical cable while determining a GPS geolocation of that application;
associating the application of the signature signal at the different points with the determined GPS geolocation of the points;
geographically map an aerial fiber optical cable map route and length distribution from the associated signal(s) and geolocation of the points.
7. The method of claim 6 wherein the signature signal is determined by: determining one or more frequencies not constantly present in the DAS signal along the aerial fiber optic cable; and
employing one or more of the determined frequencies as the signature signal.
8. The method of claim 7 wherein the signature signal is generated by an acoustic signal generator, said acoustic signal generator physically moved along the length of the aerial fiber optical cable.
9. The method of claim 8 wherein the acoustic signal generator is affixed to a survey vehicle selected from the group consisting of terrestrial vehicle, and aerial vehicle.
10. The method of claim 9 wherein the survey vehicle is one selected from the group consisting of manned survey vehicle and unmanned survey vehicle.
PCT/US2020/026505 2019-04-05 2020-04-03 Aerial fiber optical cable localization using distributed sensing Ceased WO2020206199A1 (en)

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
US201962829669P 2019-04-05 2019-04-05
US62/829,669 2019-04-05
US16/838,105 2020-04-02
US16/838,105 US11428570B2 (en) 2019-04-05 2020-04-02 Aerial fiber optic cable localization by distributed acoustic sensing

Publications (2)

Publication Number Publication Date
WO2020206199A1 true WO2020206199A1 (en) 2020-10-08
WO2020206199A9 WO2020206199A9 (en) 2020-11-26

Family

ID=72662241

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2020/026505 Ceased WO2020206199A1 (en) 2019-04-05 2020-04-03 Aerial fiber optical cable localization using distributed sensing

Country Status (2)

Country Link
US (1) US11428570B2 (en)
WO (1) WO2020206199A1 (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP4296633A4 (en) * 2021-02-17 2025-01-01 Nippon Telegraph And Telephone Corporation METHOD FOR SPECIFYING POSITION OF DISTRIBUTION SERVICE POLE AND METHOD FOR ESTIMATING CONDITION OF OVERHEAD FIBER OPTIC CABLE

Families Citing this family (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US11422146B2 (en) * 2020-04-06 2022-08-23 Nec Corporation Wind speed measurement using distributed fiber optic sensing
US20210318166A1 (en) * 2020-04-14 2021-10-14 Nec Laboratories America, Inc. Continuous aerial cable monitoring using distributed acoustic sensing (das) and operational modal analysis (oma)
CN112764179B (en) * 2020-12-31 2022-08-16 中油奥博(成都)科技有限公司 Downhole optical cable and downhole method
US11736867B2 (en) * 2021-01-20 2023-08-22 Nec Corporation Active microphone for increased DAS acoustic sensing capability
US20220236105A1 (en) * 2021-01-25 2022-07-28 Nec Laboratories America, Inc Detection of static weight on aerial telecommunications optical fibers using das ambient data
WO2022180834A1 (en) * 2021-02-26 2022-09-01 日本電信電話株式会社 Coherent light measuring device, and optical line test system and method
US11733070B2 (en) * 2021-03-03 2023-08-22 Nec Corporation Street light operating status monitoring using distributed optical fiber sensing
US11698290B2 (en) * 2021-04-06 2023-07-11 Nec Corporation Contrastive learning of utility pole representations from distributed acoustic sensing signals
US11846569B2 (en) * 2021-04-08 2023-12-19 Nec Corporation Utility pole integrity assessment by distributed acoustic sensing and machine learning
US20220329068A1 (en) * 2021-04-12 2022-10-13 Nec Laboratories America, Inc Utility Pole Hazardous Event Localization
US11754612B2 (en) 2021-04-14 2023-09-12 Nec Corporation Distribution transformer localization and monitoring using distributed fiber optic sensing
US20230024104A1 (en) * 2021-07-23 2023-01-26 Nec Laboratories America, Inc Identification of false transformer humming using machine learning
US20230266196A1 (en) * 2022-02-23 2023-08-24 Nec Laboratories America, Inc Audio based wooden utility pole decay detection based on distributed acoustic sensing and machine learning
JP7758178B2 (en) * 2022-05-25 2025-10-22 日本電気株式会社 Location evaluation device, location evaluation method, and program
JP2024043302A (en) * 2022-09-16 2024-03-29 日本電気株式会社 Location evaluation device, location evaluation method, and program
WO2024229392A1 (en) * 2023-05-03 2024-11-07 X Development Llc Active seismic source generation for distributed acoustic sensing, geo-tagging, and subsurface imaging
US20250130074A1 (en) * 2023-10-24 2025-04-24 Nec Laboratories America, Inc. TreeEventID A SYSTEM FOR ACCURATE TREE HAZARD DETECTION ON AERIAL TELECOM CABLES USING DISTRIBUTED FIBER SENSING AND NOVEL InfoNCE-BASED LEARNING
CN117906502B (en) * 2023-12-28 2024-09-03 厦门电力工程集团有限公司 Method and equipment for positioning optical cable disturbance event alarm point

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2002107592A (en) * 2000-09-27 2002-04-10 Uchida Tanko Kk Optical cable support for overhead wiring
JP2002281649A (en) * 2001-01-11 2002-09-27 Furukawa Electric Co Ltd:The Overhead distribution line
WO2008057810A2 (en) * 2006-11-02 2008-05-15 Current Technology, Llc System and method for determining distribution transformer efficiency
JP2012228001A (en) * 2011-04-15 2012-11-15 Kansai Electric Power Co Inc:The Method of replacing aerial line between electric poles and replacement tool used therein

Family Cites Families (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB8917472D0 (en) * 1989-07-31 1989-09-13 Telephone Cables Ltd Stress limiter for non-metallic cable support fittings
GB9210063D0 (en) * 1992-05-09 1992-06-24 Bicc Plc Overhead optical transmission system
US5563971A (en) * 1995-04-28 1996-10-08 The Whitaker Corporation Floating bottleneck for multiple position fiber optic receptacle

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2002107592A (en) * 2000-09-27 2002-04-10 Uchida Tanko Kk Optical cable support for overhead wiring
JP2002281649A (en) * 2001-01-11 2002-09-27 Furukawa Electric Co Ltd:The Overhead distribution line
WO2008057810A2 (en) * 2006-11-02 2008-05-15 Current Technology, Llc System and method for determining distribution transformer efficiency
JP2012228001A (en) * 2011-04-15 2012-11-15 Kansai Electric Power Co Inc:The Method of replacing aerial line between electric poles and replacement tool used therein

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
ANONYMOUS: "Distributed Acoustic Sensing (DAS) technology employed to tackle overhead power line theft AU - Anonymous", 22 August 2018 (2018-08-22), pages 1 - 4, XP055740322, Retrieved from the Internet <URL:https://www.bandweaver.com/wp-content/uploads/2018/08/Edesur-power-line-theft-prevention-case-study-v1.0.2.pdf> *

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP4296633A4 (en) * 2021-02-17 2025-01-01 Nippon Telegraph And Telephone Corporation METHOD FOR SPECIFYING POSITION OF DISTRIBUTION SERVICE POLE AND METHOD FOR ESTIMATING CONDITION OF OVERHEAD FIBER OPTIC CABLE

Also Published As

Publication number Publication date
WO2020206199A9 (en) 2020-11-26
US20200319017A1 (en) 2020-10-08
US11428570B2 (en) 2022-08-30

Similar Documents

Publication Publication Date Title
US11428570B2 (en) Aerial fiber optic cable localization by distributed acoustic sensing
US11366231B2 (en) Smart optical cable positioning/location using optical fiber sensing
JP7267918B2 (en) Method and system for distributed acoustic sensing
WO2020044648A1 (en) Utility-pole position identification system, utility-pole position identification device, utility-pole position identification method, and non-transitory computer readable medium
US20180136354A1 (en) Sensor device and method for borehole seismic applications
WO2020044655A1 (en) Utility-pole deterioration detection system, utility-pole deterioration detection device, utility-pole deterioration detection method, and non-transitory computer readable medium
JPWO2020044660A1 (en) State identification system, state identification device, state identification method, and program
US20220065977A1 (en) City-scale acoustic impulse detection and localization
US20230176244A1 (en) Systems and methods for determining and distinguishing buried objects using artificial intelligence
Xia et al. First proof that geographic location on deployed fiber cable can be determined by using OTDR distance based on distributed fiber optical sensing technology
CN103033820A (en) Optical cable identifying method and equipment
US11754612B2 (en) Distribution transformer localization and monitoring using distributed fiber optic sensing
JP3386966B2 (en) Accident detection position locating system for overhead transmission lines
US12160090B2 (en) Dynamic anomaly localization of utility pole wires
EP3092504A2 (en) Apparatus and method for monitoring and controlling detection of stray voltage anomalies using a photonic sensor
CN213336716U (en) Multifunctional optical cable detection device
JPWO2020111260A1 (en) Optical fiber sensing extension device and optical fiber sensing system
Fiori et al. Environmental noise in gravitational-wave interferometers
WO2022113252A1 (en) Position specifying system, vibration generator, and position specifying method
JP2008096203A (en) Information receiving apparatus and seismometer information receiving apparatus using the same or information receiving system using the same
JP2006046938A (en) Weak ground current detection method and system
CN112129490B (en) Multifunctional optical cable detection device and method
RU2693060C1 (en) Ultra-low frequency and ultra-rare-frequency communication system with deep-loaded and remote objects-8
RU2778738C1 (en) System for very-low-frequency and ultra-low-frequency range communication with deep-submerged and remote objects
RU2766153C1 (en) System for communication of the very-low-frequency and ultra-low-frequency range with deep-submerged and remote objects

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 20783944

Country of ref document: EP

Kind code of ref document: A1

NENP Non-entry into the national phase

Ref country code: DE

122 Ep: pct application non-entry in european phase

Ref document number: 20783944

Country of ref document: EP

Kind code of ref document: A1