Dynamic strain sensing using Doppler-shift-immune phase-sensitive OFDR with ultra-weak reflection array and frequency-tracking

Qiang Yang, Weilin Xie*, Congfan Wang, Bowen Li, Xin Li, Xiang Zheng, Wei Wei, Y. Dong

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

In distributed fiber-optic sensing based on optical frequency domain reflectometry (OFDR), Doppler frequency shifts due to the changes of disturbances during one sweep period introduce demodulation errors that accumulate along both the distance and time, impairing the sensing performance. Here, we report distributed dynamic strain sensing using Doppler-shift-immune phase-sensitive OFDR based on frequency-tracking and spectrum-zooming with an ultra-weak reflection array. A theoretical study has been carried out with the introduction of the mismatch coefficient, unveiling quantitatively the impact of the Doppler shift. Following a numerical analysis of the proposed method, a retained precision has been experimentally verified regardless of the position mismatch due to the Doppler effect. Doppler-shift-immune sensing for dynamic strains covering continuous spatial resolution over a distance of 1000 m with a 2.5 cm sensing spatial resolution has been demonstrated, verifying the high fidelity promised by the proposed method.

Original languageEnglish
Pages (from-to)44816-44828
Number of pages13
JournalOptics Express
Volume32
Issue number25
DOIs
Publication statusPublished - 2 Dec 2024

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