Time-expanded φOTDR using low-frequency electronics

Author:

Soriano-Amat MiguelORCID,Martins Hugo F.1ORCID,Martin-Lopez Sonia,Gonzalez-Herraez Miguel,Fernández-Ruiz María R.,Durán Vicente2ORCID

Affiliation:

1. Instituto de Óptica “Daza de Valdés” IO-CSIC

2. Institute of New Imaging Technologies

Abstract

Time expanded phase-sensitive optical time-domain reflectometry (TE-φOTDR) is a recently reported technique for distributed optical fiber sensing based on the interference of two mutually coherent optical frequency combs. This approach enables distributed acoustic sensing with centimeter resolution while keeping the detection bandwidth in the megahertz range. In this paper, we demonstrate that TE-φOTDR can be realized with low-frequency electronics for both signal generation and detection. This achievement is possible thanks to the use of a couple of electro-optic comb generators driven by commercially available step recovery diodes. These components are fed by radio frequencies that are orders of magnitude lower than those involved in the signals so far originated by ultrafast waveform generation. The result is a simple, compact, low-cost and potentially field-deployable sensor that works without resorting to any decoding algorithm. Besides, high-resolution distributed sensing is carried out with no need of coding strategies or enhanced backscatter fibers. To check the capabilities of our system, we perform distributed strain sensing over a range of 20 m. The spatial resolution is 3 cm and the acoustic sampling rate can be increased up to 200 Hz. This performance reveals the prospective of the proposed approach for field applications, including structural health monitoring.

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

Cited by 5 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. SNR enhancement in TE $-\emptyset$ OTDR via multi Nyquist zone averaging;2024 IEEE Sensors Applications Symposium (SAS);2024-07-23

2. Millimetric spatial resolution time-expanded ϕ-OTDR;APL Photonics;2023-10-01

3. Time Expansion in Distributed Optical Fiber Sensing;Journal of Lightwave Technology;2023-06-01

4. Time-expanded phase-sensitive OTDR: High-resolution DAS based on dual-comb spectroscopy;28th International Conference on Optical Fiber Sensors;2023

5. 2 cm spatial resolution Brillouin optical time-domain analysis with <100 kHz detection bandwidth using time expansion;28th International Conference on Optical Fiber Sensors;2023

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