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Distributed Acoustic Sensing in Geophysics


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target="_blank" rel="nofollow" href="#ulink_71285571-0b3c-5610-a111-8e371d358ed0">Figure 4.5 Time domain and STFT spectrogram of sweeping frequency signal.

      We propose a real‐time DAS system based on PGC demodulation algorithm. Compared with the previous work (Fang et al., 2015), it brings a 15.6 dB improvement in phase noise. The average noise could reach ~5 × 10‐4 rad/√Hz, and the strain sensitivity is as small as 8.5 pε/√Hz for a 10 m spatial resolution. This PGC‐DAS system could measure the dynamic vibration signal from 2 Hz to 1 kHz over a 10 km long optical fiber, with a linear coefficient R2 of 0.99941 and a minimum spatial interval of 0.4 m. The near‐surface seismic experimental results show that DAS data are qualitatively similar to the signals observed on the geophones. These facts suggest that DAS technology provides a novel and highly valuable tool for geophysical science in a wider sense. Moreover, PGC‐DAS system has potential advantages in reducing size and power consumption due to simple structure and efficient phase demodulation algorithm, and a mini‐PGC‐DAS module is under development, with a size of 150 mm × 300 mm × 110 mm (width × depth × height) and a power consumption of 25 W, which could work at the bottom for submarine application.

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      This work was funded by the National Natural Science Foundation of China (Grant Nos. 61875184 and 61775210), the National Key Research and Development Program of China (Grant No. 2017YFB0405500), the Strategic Priority Research Program of the Chinese Academy of Sciences (Grant Nos. XDC02040500 and XDA22040105), and State Key Laboratory of Geodesy and Earth’s Dynamics, Institute of Geodesy and Geophysics, Chinese Academy of Sciences (Grant No. SKLGED2019‐5‐4‐E).

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