Scientific Applications of Distributed Acoustic Sensing: State-of-the-Art Review and Perspective
Abstract
:1. Introduction
2. Theoretical Background (Andrei A. Fotiadi, Dmitry A. Korobko, Kivilcim Yüksel, and Marc Wuilpart)
2.1. A Brief History of Fiber Optic Acoustic Sensors
2.2. Mathematical Formalism for Distributed ϕ-OTDR Sensing
2.3. Quasi-Distributed DAS Using Fiber Bragg Gratings (FBGs)
2.3.1. Probe Pulse Configurations: Single (Long) Pulse versus Double (Short) Pulse Interrogation
2.3.2. Multi-Reflection and Spectral Shadowing Crosstalk
2.3.3. Spectral Shadowing Crosstalk Mitigation
3. DAS in the Engineering Sciences (Andrey A. Zhirnov and Konstantin V. Stepanov)
3.1. Pipelines
3.2. Railways
3.3. Highways
3.4. Structures
3.5. Other
4. DAS in Geophysics (Boris G. Gorshkov)
4.1. Vertical Seismic Profiling
4.2. Surface Seismics with DAS
5. DAS in Biology and Other Natural Sciences (Artem T. Turov)
6. Acoustic Sensing and DAS in Humanitarian Sciences and Culture: Perspective (Yuri A. Konstantinov)
6.1. Fiber-Optic Acoustic Sensing in Humanitarian Sciences: Early Stages
6.2. DAS in Sound-Engineering: First Steps and Perspective
7. Conclusions (Yuri A. Konstantinov and Ivan A. Lobach)
Author Contributions
Funding
Informed Consent Statement
Acknowledgments
Conflicts of Interest
References
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Area of Interest, Requirements | Freq. Ranges | Digitizing Bitrate | Processing Delay | Integration to the Area |
---|---|---|---|---|
Geophysics | from 0.05 to tens of Hz | Usually 8 bits | from 0.5 s to few seconds | High |
Engineering | From Hz to hundreds of kHz | Usually 8 bits | from 0.5 s to few seconds | High |
Biology | Usually within 20 Hz–20 kHz | N/A | N/A | Low |
Arts | 20 Hz–20 kHz | 24–32 bits | <20 ns for live recording, N/A for studio | Medium |
Best achieved * | 0.001 Hz [180]–80 kHz [181] | 16 bits [182] | 1 ms [183] | N/A |
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Gorshkov, B.G.; Yüksel, K.; Fotiadi, A.A.; Wuilpart, M.; Korobko, D.A.; Zhirnov, A.A.; Stepanov, K.V.; Turov, A.T.; Konstantinov, Y.A.; Lobach, I.A. Scientific Applications of Distributed Acoustic Sensing: State-of-the-Art Review and Perspective. Sensors 2022, 22, 1033. https://doi.org/10.3390/s22031033
Gorshkov BG, Yüksel K, Fotiadi AA, Wuilpart M, Korobko DA, Zhirnov AA, Stepanov KV, Turov AT, Konstantinov YA, Lobach IA. Scientific Applications of Distributed Acoustic Sensing: State-of-the-Art Review and Perspective. Sensors. 2022; 22(3):1033. https://doi.org/10.3390/s22031033
Chicago/Turabian StyleGorshkov, Boris G., Kivilcim Yüksel, Andrei A. Fotiadi, Marc Wuilpart, Dmitry A. Korobko, Andrey A. Zhirnov, Konstantin V. Stepanov, Artem T. Turov, Yuri A. Konstantinov, and Ivan A. Lobach. 2022. "Scientific Applications of Distributed Acoustic Sensing: State-of-the-Art Review and Perspective" Sensors 22, no. 3: 1033. https://doi.org/10.3390/s22031033
APA StyleGorshkov, B. G., Yüksel, K., Fotiadi, A. A., Wuilpart, M., Korobko, D. A., Zhirnov, A. A., Stepanov, K. V., Turov, A. T., Konstantinov, Y. A., & Lobach, I. A. (2022). Scientific Applications of Distributed Acoustic Sensing: State-of-the-Art Review and Perspective. Sensors, 22(3), 1033. https://doi.org/10.3390/s22031033