IP Library › Granted Patent US 12,669,626
Granted Patent B2
US 12,669,626 · App. 18/329,133 · Granted Jun 30, 2026

Method and apparatus of distributed acoustic sensing

Inventors: Hongxin Chen (Montreal, CA); Michel Leblanc (Quebec, CA); Michel Leclerc (Quebec, CA)
Assignee: EXFO Inc.
G01V1/226G01V1/001
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,669,626
App. No.
18/329,133
Filed
Jun 5, 2023
Granted
Jun 30, 2026
Kind
B2
Art Unit
2855
USPC
73/655
Abstract

There is provided a method and an apparatus of fiber optic distributed acoustic sensing (DAS) which can use low-cost coherent laser as well as low-cost acquisition and processing electronics and which can still provide reliable monitoring results for optical fiber monitoring and troubleshooting applications in optical fiber telecommunication networks. Such low-cost solution is made possible by employing grouped data signal processing. Data is processed over independent groups of data to provide an independent DAS signal for each group. This allows measurements to be less sensitive to laser fluctuations and thereby reduces coherent laser technical specification requirements and allows the use of a low-cost coherent laser (thereby reducing the cost of the laser) as well as low-cost acquisition and processing electronics.

Claims (28)

1 . A method for performing acoustic and vibration measurements based on fiber optic distributed acoustic sensing (DAS), the method comprising:

performing repetitive DAS acquisitions toward an optical fiber link using a DAS acquisition device comprising a coherent Optical Time Domain Reflectometer (OTDR) to provide a group of K DAS traces, wherein each DAS acquisition is performed by propagating in the optical fiber link, a pulsed test signal and detecting corresponding return light from the optical fiber link so as to obtain a DAS trace representing backscattered and reflected light as a function of distance in the optical fiber link;

processing said group of DAS traces to produce a DAS signal associated with said group; and

repeating said performing repetitive DAS acquisitions and said processing said group of DAS traces to obtain a plurality of independent groups of DAS traces and a corresponding plurality of DAS signals, such that independent DAS signals are obtained using said independent groups of DAS traces.

2 . The method as claimed in claim 1 , wherein said DAS acquisition device comprises multiple DAS acquisition channels, said DAS acquisition channels sharing a single coherent light source and wherein said method comprises performing DAS acquisitions toward multiple channels each connected to an optical fiber link.

3 . The method as claimed in claim 1 , wherein processing said group of DAS traces comprises:

for each independent group of DAS traces P (n,k) (z), calculating a Root Mean Square (RMS) difference as a function of a distance z along the optical fiber link, to obtain a corresponding DAS signal √{square root over ( ΔP (n,k) (z) 2 K )},

wherein n represents the data group index (n=1 to N) and k represents the DAS trace index within one group (k=1 to K).

4 . The method as claimed in claim 1 , wherein a time lapse ΔT is left in-between groups of DAS acquisitions to prevent memory saturation and allow time for processing said group of DAS traces before DAS acquisitions of the next group.

5 . The method as claimed in claim 4 , wherein no test signal is propagated in said optical fiber link during said time lapse ΔT.

6 . The method as claimed in claim 4 , wherein DAS acquisitions performed during said time lapse ΔT are discarded.

7 . A fiber optic distributed acoustic sensing (DAS) system for performing acoustic and vibration measurements, the DAS system comprising:

a DAS acquisition device connectable toward an optical fiber link and comprising a coherent Optical Time Domain Reflectometer (OTDR) for performing repetitive DAS acquisitions, wherein each DAS acquisition is performed by propagating in the optical fiber link, a pulsed test signal and detecting corresponding return light from the optical fiber link so as to obtain a DAS trace representing backscattered and reflected light as a function of distance in the optical fiber link, wherein DAS traces are acquired in groups to provide a plurality of groups of K DAS traces;

a memory to store said groups of DAS traces, at least one group of DAS traces at a time; and

a processing unit receiving and independently processing each group of DAS traces to produce corresponding DAS signals, such that independent DAS signals are obtained using independent groups of DAS traces feast e-DAS-acquisition device.

8 . The DAS system as claimed in claim 7 , wherein said DAS acquisition device comprises multiple DAS acquisition channels for performing DAS acquisitions toward multiple channels each connected to an optical fiber link, wherein said DAS acquisition channels share a single coherent light source.

9 . The DAS system as claimed in claim 7 , wherein said DAS acquisition device has a coherent OTDR mode of operation for performing acoustic and vibration measurements and an un-coherent OTDR mode of operation for performing optical fiber loss measurement.

10 . The DAS system as claimed in claim 9 , wherein said DAS acquisition device comprises:

a light generating assembly to be coupled to the optical fiber link for generating and propagating in the optical fiber link a test light signal comprising test light pulses, the light generating assembly comprising:

a coherent light source to produce continuous wave coherent light;

a semiconductor optical amplifier receiving light from said coherent light source;

a pulse generator connected to the semiconductor optical amplifier to drive it to generate said test light pulses; and

a detection module for detecting corresponding return light from the optical fiber link so as to acquire a reflectometric trace representing backscattered and reflected light as a function of distance along the optical fiber link;

wherein in the coherent OTDR mode of operation, said coherent light source is turned on so that said light generating assembly produces a coherent pulsed test light signal, so as to acquire DAS traces for acoustic and vibration measurement; and

wherein in the un-coherent OTDR mode of operation, said coherent light source is turned off so that said light generating assembly produces an un-coherent pulsed test light signal, so as to acquire un-coherent reflectometric traces for optical fiber loss measurement.

11 . The DAS system as claimed in claim 7 , wherein the DAS acquisition device comprises a controller configured to leave a time lapse ΔT in-between groups of DAS acquisitions to prevent memory saturation and allow time for processing each group of DAS traces before DAS acquisitions of the next group.

12 . The DAS system as claimed in claim 11 , wherein said controller is configured to drive said DAS acquisition device to not propagate said pulsed test signal in said optical fiber link during said time lapse ΔT.

13 . The DAS system as claimed in claim 11 , wherein said controller is configured to drive said DAS acquisition device to perform DAS acquisitions during said time lapse ΔT but discard them.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 1, 2026
From: CHEN, HONGXIN; LEBLANC, MICHEL; LECLERC, MICHEL
To: EXFO INC.
Reel/Frame 074536/0709 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 21, 2023
From: CHEN, HONGXIN; LEBLANC, MICHEL; LECLERC, MICHEL
To: EXFO INC.
Reel/Frame 064013/0227 →
Continuity (5)
Provisional Application 63486786 · Feb 24, 2023
Provisional Application 63486797 · Feb 24, 2023
Provisional Application 63367673 · Jul 5, 2022
Provisional Application 63367689 · Jul 5, 2022
Related Publication 20240012167A1 · Jan 11, 2024
References Cited (61)
US 5194847A · Taylor et al. · 1993 [cited by applicant]
US 6778720B1 · Cekorich et al. · 2004 [cited by applicant]
US 7920253B2 · Cyr et al. · 2011 [cited by applicant]
US 7957436B2 · Chen et al. · 2011 [cited by applicant]
US 8923663B2 · Hill et al. · 2014 [cited by applicant]
US 9170149B2 · Hartog · 2015 [cited by examiner]
US 9228890B2 · Omichi et al. · 2016 [cited by applicant]
US 9476760B2 · Brady et al. · 2016 [cited by applicant]
US 9641243B2 · Perron · 2017 [cited by applicant]
US 10048115B2 · Farhadiroushan et al. · 2018 [cited by applicant]
US 10345138B2 · Milione · 2019 [cited by examiner]
US 10393572B2 · Farhadiroushan et al. · 2019 [cited by applicant]
US 10429234B2 · Nishiguchi · 2019 [cited by examiner]
US 10697824B2 · Cedilnik · 2020 [cited by examiner]
US 11169019B2 · Chen · 2021 [cited by examiner]
US 11237025B2 · Issa · 2022 [cited by examiner]
US 11698288B2 · Hveding et al. · 2023 [cited by applicant]
US 11815373B2 · Issa · 2023 [cited by examiner]
US 11976552B2 · Skinner et al. · 2024 [cited by applicant]
US 12326533B2 · Li et al. · 2025 [cited by applicant]
US 20120177174A1 · Ikhlef et al. · 2012 [cited by applicant]
US 20120280117A1 · Lewis et al. · 2012 [cited by applicant]
US 20130319121A1 · Hill et al. · 2013 [cited by applicant]
US 20160169712A1 · Farhadiroushan et al. · 2016 [cited by applicant]
US 20170082484A1 · Farhadiroushan et al. · 2017 [cited by applicant]
US 20170149496A1 · Perron et al. · 2017 [cited by applicant]
US 20200393290A1 · Chen · 2020 [cited by examiner]
US 20210140814A1 · Aktas et al. · 2021 [cited by applicant]
US 20210356776A1 · Ip et al. · 2021 [cited by applicant]
US 20210359755A1 · Rochat · 2021 [cited by applicant]
US 20220128383A1 · Huang et al. · 2022 [cited by applicant]
US 20230314605A1 · Costa · 2023 [cited by examiner]
US 20240012167A1 · Chen · 2024 [cited by examiner]
US 20240134076A1 · Chen · 2024 [cited by examiner]
CA 2946279C · 2018 [cited by examiner]
CN 115452191A · 2022 [cited by applicant]
EP 3933371A1 · 2022 [cited by applicant]
GB 2442745A · 2008 [cited by applicant]
WO 2007036051A1 · 2007 [cited by applicant]
WO 2014201057A2 · 2014 [cited by applicant]
WO 2017127212A1 · 2017 [cited by applicant]
WO 2017139579A1 · 2017 [cited by applicant]
WO 2020032878A1 · 2020 [cited by applicant]
Sascha Liehr et al., Wavelength-scanning coherent OTDR for dynamic high strain resolution sensing, Optics Express, vol. 26 Issue 8, pp. 10573-10588 (2018), Retrieved from the Internet:< URL: https://opg.optica.org/direc… [cited by applicant]
Mengmeng Chen, Ali Masoudi, and Gilberto Brambilla, “Performance analysis of distributed optical fiber acoustic sensors based on φ-OTDR,” Optics Express vol. 27, Issue 7, pp. 9684-9695 (2019), <https://doi.org/10.1364/O… [cited by applicant]
Zhaoyong Wang, Bin Lu, Qing Ye, Haiwen Cai. Recent Progress in Distributed Fiber Acoustic Sensing with φ-OTDR. Published: Nov. 18, 2020 MDPI Journals-Sensors-vol. 20 Issue 22. [online], [retrieved on Jun. 24, 2022]. Ret… [cited by applicant]
Hino Tomoyuki, Aono Yoshiaki, Ming-Fang Huang, Tanaka Toshiaki, Sakurai Hitoshi. Optical Fiber Sensing Technology Visualizing the Real World via Network Infrastructures. Jan. 2020 NEC Technical Journal vol. 14 No. 1 Spe… [cited by applicant]
Tiejun J. Xia, Glenn A. Wellbrock, Ming-Fang Huang, Shaobo Han, Yuheng Chen, Milad Salemi, Philip N. Ji, Ting Wang and Yoshiaki Aono. Field Trial of Abnormal Activity Detection and Threat Level Assessment with Fiber Opt… [cited by applicant]
María R. Fernandez-Ruiz, Luis Costa and Hugo F. Martins. Distributed Acoustic Sensing Using Chirped-Pulse Phase-Sensitive OTDR Technology. Published: Oct. 9, 2019 Sensors 2019, vol. 19, issue 20, 4368 [online], [retriev… [cited by applicant]
Maria R. Fernandez-Ruiz, Juan Pastor-Graells, Hugo F. Martins, Andres Garcia-Ruiz, Sonia Martin-Lopez, and Miguel Gonzalez-Herraez. Laser Phase-Noise Cancellation in Chirped-Pulse Distributed Acoustic Sensors. Article i… [cited by applicant]
Yonas Muanenda. Recent Advances in Distributed Acoustic Sensing Based on Phase-Sensitive Optical Time Domain Reflectometry. Hindawi Journal of Sensors vol. 2018, Article ID 3897873, 16 pages Published May 13, 2018 [onli… [cited by applicant]
Yonas Muanenda, Claudio J. Oton, Stefano Faralli, Fabrizio Di Pasquale. A Cost-Effective Distributed Acoustic Sensor Using a Commercial Off-the-Shelf DFB Laser and Direct Detection Phase-OTDR. IEEE Photonics Journal, vo… [cited by applicant]
Hisashi Izumita, Shin-ichi Furukawa, Yahei Koyamada, and Izumi Sankawa. Fading Noise Reduction in Coherent OTDR. IEEE Photonics Technology Letters, vol. 4, No. 2, Feb. 1992 p. 201-203. [online], [retrieved on Jun. 3, 20… [cited by applicant]
Juan C. Juarez, Eric W. Maier, Kyoo Nam CHOI, Henry F. Taylor. Distributed Fiber-Optic Intrusion Sensor System. Journal of Lightwave Technology, vol. 23, No. 6, Jun. 2005, pp. 2081-2087. [online], [retrieved on Jul. 28,… [cited by applicant]
R. Juskaitis, A. M. Mamedov, V. T. Potapov, S. V. Shatalin. Interferometry with Rayleigh backscattering in a single-mode optical fiber. Optical Society of America, Optics Letters, vol. 19, No. 3, pp. 225-227, Feb. 1, 19… [cited by applicant]
Austin Park, Intelligent Perimeter & Intrusion Detection Fiber Optic Sensing. NEC Corporation of America Advanced Recognition System, Nov. 6, 2019. [online], [retrieved on Jul. 5, 2022]. Retrieved from the Internet <URL… [cited by applicant]
Arthur H. Hartog. An Introduction to Distributed Optical Fibre Sensors. CRC Press Taylor and Francis Group, Series in fiber optic sensors, 2017, p. 235-240, 275-276. [cited by applicant]
D. Villafani Caballero, J. P. von der Weid, Patryk Urban. Tuneable OTDR measurements for WDM-PON monitoring Conference: Microwave & Optoelectronics Conference (IMOC), 2013 SBMO/IEEE MTT-S International Conference Paper … [cited by applicant]
K De Souza. Significance of coherent Rayleigh noise in fibre-optic distributed temperature sensing based on spontaneous Brillouin scattering. Measurement Science and Technology, vol. 17, No. 5, pp. 1065-1069 Published A… [cited by applicant]
H. Chen, R. Baribault, M. Leclerc, É. Morin-Drouin, S. Perron, B. Ruchet, É. Thomassin, G. W. Schinn. Widely Tunable SOA-Based OTDR Employing a Cost-Effective Source Configuration. Optical Fiber Communication (OFC) Conf… [cited by applicant]
Unknown Author, Laser Lab Source. Semiconductor Optical Amplifier (SOA) Ultra-Fast PULSE and CW Control Electonics and Mounting Module. Datasheet [online]. Laser Diode Control [retrieved on Sep. 14, 2022]. Retrieved fro… [cited by applicant]