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Fading-free and bandwidth-enhanced TGD-OFDR system with a resource-efficient fiber frequency-shifting loop

  • Yanyang Lei
  • , Tianyu Yang
  • , Shuaiqi Liu
  • , Xiaohui Tang
  • , Yunbin Ma
  • , Tianfu Li
  • , Hongwei Li
  • , Meng Xia
  • , Yaxi Yan
  • , Taofei Jiang
  • , Yongkang Dong
  • Harbin Institute of Technology
  • PipeChina
  • Westlake Institute for Optoelectronics
  • Hong Kong Polytechnic University

Research output: Contribution to journalArticlepeer-review

Abstract

This paper proposes a time-gated distributed optical frequency domain reflectometry (TGD-OFDR) system based on a fiber frequency-shifting loop (FFSL) to address the critical challenges of signal fading and limited response bandwidth (RBW) in distributed acoustic sensing (DAS). The core innovation leverages a polarization-maintaining FFSL to generate broadband frequency-encoded pulse sequences from a single initial pulse through cyclic modulation, significantly relaxing the requirements for high-speed modulation hardware and system cost by using a conventional acoustic-optic modulator (AOM). The AOM is further utilized to pre-correct the pulse train, suppressing transient effects from optical amplifiers and enhancing system stability. A polarization-frequency joint diversity scheme is used to mitigate interference and polarization fading simultaneously. Experimental results over 11.5 km of sensing fiber demonstrate a tenfold enhancement in RBW (up to 43.5 kHz vibration detection), successful demodulation of broadband chirped signals, excellent long-term stability, high sensitivity down to 0.1 Hz, and a highly linear response. This work presents a resource-efficient and scalable solution for fading-free, bandwidth-enhanced DAS.

Original languageEnglish
Pages (from-to)11667-11684
Number of pages18
JournalOptics Express
Volume34
Issue number7
DOIs
StatePublished - 6 Apr 2026

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