Affiliation:
1. School of Electronic Engineering, Beijing University of Posts and Telecommunications, Beijing 100876, China
Abstract
In the domain of optical fiber distributed acoustic sensing, the persistent challenge of extending sensing distances while concurrently improving spatial resolution and frequency response range has been a complex endeavor. The amalgamation of pulse compression and frequency division multiplexing methodologies has provided certain advantages. Nevertheless, this approach is accompanied by the drawback of significant bandwidth utilization and amplified hardware investments. This study introduces an innovative distributed optical fiber acoustic sensing system aimed at optimizing the efficient utilization of spectral resources by combining compressed pulses and frequency division multiplexing. The system continuously injects non-linear frequency modulation detection pulses spanning various frequency ranges. The incorporation of non-uniform frequency division multiplexing augments the vibration frequency response spectrum. Additionally, nonlinear frequency modulation adeptly reduces crosstalk and enhances sidelobe suppression, all while maintaining a favorable signal-to-noise ratio. Consequently, this methodology substantially advances the spatial resolution of the sensing system. Experimental validation encompassed the multiplexing of eight frequencies within a 120 MHz bandwidth. The results illustrate a spatial resolution of approximately 5 m and an expanded frequency response range extending from 1 to 20 kHz across a 16.3 km optical fiber. This achievement not only enhances spectral resource utilization but also reduces hardware costs, making the system even more suitable for practical engineering applications.
Funder
State Key Laboratory of Information Photonics and Optical Communications
The Funds for Creative Research Groups of China
Subject
Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry
Reference43 articles.
1. Palmieri, L., Schenato, L., Santagiustina, M., and Galtarossa, A. (2022). Rayleigh-Based Distributed Optical Fiber Sensing. Sensors, 22.
2. Pendão, C., and Silva, I. (2022). Optical Fiber Sensors and Sensing Networks: Overview of the Main Principles and Applications. Sensors, 22.
3. Distributed optical fibre sensor for infrastructure monitoring: Field applications;Hendrik;Opt. Fiber Technol.,2021
4. Analyzing the Results of Monitoring the Situations that May Occur in Emergency Situations of Bridges Through Various Optical Sensors;Xakimovich;Glob. Sci. Rev.,2022
5. Pipeline Leak Detection Technology Based on Distributed Optical Fiber Acoustic Sensing System;Zuo;IEEE Access,2020