Читать книгу Distributed Acoustic Sensing in Geophysics - Группа авторов - Страница 32
REFERENCES
Оглавление1 Abbott, R. E., Mellors, R. E., & Pitarka, A. E. (2019). Distributed acoustic sensing observations and modeling of the DAG series of chemical explosions. Paper presented in CTBT Science & Technology 2019 Conference, T2.3‐P12. https://ctnw.ctbto.org/ctnw/abstract/32643
2 Baird, A. (2020). Modelling the response of helically wound DAS cables to microseismic arrivals. Paper presented in First EAGE Workshop on Fibre Optic Sensing (Vol. 2020, No. 1, pp. 1–5). European Association of Geoscientists & Engineers.
3 Benioff, H. (1935). A linear strain Seismograph. Bulletin of the Seismological Society of America, 25(4), 283–309.
4 Brennan, D. G. (1959). Linear diversity combining techniques. Proceedings of the IRE, 47(6), 1075–1102. doi: 10.1109/JRPROC.1959.287136
5 Carroll, J., & Huber, D. (1986). A fiber‐optic hydrophone with a mechanical anti‐aliasing filter. Journal of Lightwave Technology, 4(1), 83–86.
6 Correa, J., Egorov, A., Tertyshnikov, K., Bona, A., Pevzner, R., Dean, T., et al. (2017). Analysis of signal to noise and directivity characteristics of DAS VSP at near and far offsets—A CO2CRC Otway Project data example. The Leading Edge, 36(12), 994a1–994a7. doi: 10.1190/tle36120994a1.1
7 Crickmore, R. I., & Hill, D. J. (2010). U.S. Patent No. 7,652,245. Washington, DC: U.S. Patent and Trademark Office.
8 Crickmore, R., & Ku, E. (2017). U.S. Patent Application No. 15/309,076.
9 Dakin, J. P. (1990). Distributed fibre optic sensor system. UK Patent, GB2222247A.
10 Dakin, J., & Culshaw, B. (Eds.). (1989). Optical fiber sensors: Systems and applications (Vol. 2, Chap. 15). Artech House Optoelectronics. Norwood, Massachusetts.
11 De Rosa, M., Carberry, J., Bhagavatula, V., Wagner, K., & Saravanos, C. (2002). High‐power performance of single‐mode fiber‐optic connectors. Journal of Lightwave Technology, 20(5), 851.
12 Ellis, R. (2007). Explanation of reflection features in optical fiber as sometimes observed in OTDR measurement traces. Corning White Paper.
13 Farhadiroushan, M., Finfer, D., Strusevich, D., Shatalin, S., & Parker, T. (2021). Non‐isotropic acoustic cable. U.S. Patent Application No. 15/804,657.
14 Farhadiroushan, M., Parker, T. R., & Shatalin, S. (2010). Method and apparatus for optical sensing. WO2010136810A2.
15 Farhadiroushan, M., Parker, T., & Shatalin, S. (2021). U.S. Patent No. 10,883,861. Washington, DC: U.S. Patent and Trademark Office.
16 Finfer, D. C., Mahue, V., Shatalin, S., Parker, T., & Farhadiroushan, M. (2014, October). Borehole flow monitoring using a non‐intrusive passive distributed acoustic sensing (DAS). Paper presented in SPE Annual Technical Conference and Exhibition. Society of Petroleum Engineers. doi: 10.2118/170844‐MS
17 Fougerat, A., Guérineau, L., & Tellier, N. (2018). High‐quality signal recording down to 0.001 Hz with standard MEMS accelerometers. Paper presented in SEG Technical Program Expanded Abstracts 2018 (pp. 196–200). Society of Exploration Geophysicists.
18 Garnier, A., & Chanin, M. L. (1992). Description of a Doppler Rayleigh lidar for measuring winds in the middle atmosphere. Applied Physics B, 55(1), 35–40.
19 Ghiglia, D. C., & Pritt, M. D. (1998). Two‐dimensional phase unwrapping. Theory, algorithms, and software. New York, USA: A Wiley‐Interscience Publication.
20 Goodman, J. W. (2005). Introduction to Fourier optics (Chap. 2, 6). Roberts and Company Publishers. Englewood, Colorado.
21 Handerek, V. (2016). U.S. Patent No. 9,304,017. Washington, DC: U.S. Patent and Trademark Office.
22 Hartog, A. H. (2017). An introduction to distributed optical fibre sensors. CRC press. Boca Raton, Florida.
23 Hartog, A. H., Kotov, O. I., & Liokumovich, L. B. (2013, July). The optics of distributed vibration sensing. Paper presented in Second EAGE Workshop on Permanent Reservoir Monitoring 2013–Current and Future Trends. doi: 10.3997/2214‐4609.20131301
24 Hartog, A., & Kader, K. (2012). U.S. Patent Application No. 13/221,280.
25 Hornman, K., Kuvshinov, B., Zwartjes, P., & Franzen, A. (2013, June). Field trial of a broadside‐sensitive distributed acoustic sensing cable for surface seismic. Paper presented in 75th EAGE Conference & Exhibition incorporating SPE EUROPEC 2013. doi: 10.3997/2214‐4609.20130383
26 Itoh, K. (1982). Analysis of the phase unwrapping algorithm. Applied Optics, 21(14), 2470–2470. doi: 10.1364/AO.21.002470
27 Jousset, P., Reinsch, T., Ryberg, T., Blanck, H., Clarke, A., Aghayev, R., et al. (2018). Dynamic strain determination using fibre‐optic cables allows imaging of seismological and structural features. Nature Communications, 9(1), 2509. doi: 10.1038/s41467‐018‐04860‐y
28 Juarez, J. C., Maier, E. W., Choi, K. N., & Taylor, H. F. (2005). Distributed fiber‐optic intrusion sensor system. Journal of Lightwave Technology, 23(6), 2081–2087. doi: 10.1109/JLT.2005.849924
29 Juškaitis, R., Mamedov, A. M., Potapov, V. T., & Shatalin, S. V. (1992). Distributed interferometric fiber sensor system. Optics Letters, 17(22), 1623–1625. doi: 10.1364/OL.17.001623
30 Kazovsky, L. G. (1989). Phase‐and polarization‐diversity coherent optical techniques. Journal of Lightwave Technology, 7(2), 279–292. doi: 10.1109/50.17768
31 Kirkendall, C. K., & Dandridge, A. (2004). Overview of high performance fibre‐optic sensing. Journal of Physics D: Applied Physics, 37(18), R197. doi: 10.1088/0022‐3727/37/18/R01
32 Kreger, S. T., Gifford, D. K., Froggatt, M. E., Soller, B. J., & Wolfe, M. S. (2006, October). High resolution distributed strain or temperature measurements in single‐and multi‐mode fiber using swept‐wavelength interferometry. In Optical Fiber Sensors (p. ThE42). Optical Society of America. doi: 10.1364/OFS.2006.ThE42
33 Lewis, M. F. (1985). On Rayleigh waves and related propagating acoustic waves. In Rayleigh‐wave theory and application (pp. 37–58). Springer, Berlin, Heidelberg.
34 Martin, E. R., Lindsey, N., Ajo‐Franklin, J., & Biondi, B. (2018). EarthArXiv, Introduction to interferometry of fiber optic strain measurements (pp. 1–33).
35 Martins, H. F., Martin‐Lopez, S., Corredera, P., Salgado, P., Frazão, O., & González‐Herráez, M. (2013). Modulation instability‐induced fading in phase‐sensitive optical time‐domain reflectometry. Optics Letters, 38(6), 872–874. doi: 10.1364/OL.38.000872
36 Mateeva, A., Lopez, J., Potters, H., Mestayer, J., Cox, B., Kiyashchenko, D., et al. (2014). Distributed acoustic sensing for reservoir monitoring with vertical seismic profiling. Geophysical Prospecting, 62(4), 679–692.
37 Miller, D. E., Daley, T. M., White, D., Freifeld, B. M., Robertson, M., Cocker, J., et al. (2016). Simultaneous acquisition of distributed acoustic sensing VSP with multi‐mode and single‐mode fibre‐optic cables and 3C‐geophones at the Aquistore CO2 storage site. CSEG Recorder, 41(6).
38 Matichard, F., Lantz, B., Mittleman, R., Mason, K., Kissel, J., Abbott, B., et al. (2015). Seismic isolation of Advanced LIGO: Review of strategy, instrumentation and performance. Classical and Quantum Gravity, 32(18), 185003.
39 Parker, T. R., Farhadiroushan, M., Feced, R., Handerek, V. A., & Rogers, A. J. (1998). Simultaneous distributed measurement of strain and temperature from noise‐initiated Brillouin scattering in optical fibers. IEEE Journal of Quantum Electronics, 34(4), 645–659. doi: 10.1109/3.663443
40 Parker, T., Shatalin, S., & Farhadiroushan, M. (2014). Distributed acoustic sensing—a new tool for seismic applications. First Break, 32(2), 61–69. doi: 10.3997/1365‐2397.2013034
41 Peterson, J. R. (1993). Observations and modeling of seismic background noise (No. 93‐322). US Geological Survey.
42 Posey, R., Johnson, G. A., & Vohra, S. T. (2000). Strain sensing based on coherent Rayleigh scattering in an optical fibre. Electronics Letters, 36(20), 1688–1689. doi: 10.1049/el:20001200
43 Rathod, R., Pechstedt, R. D., Jackson, D. A., & Webb, D. J. (1994). Distributed temperature‐change sensor based on Rayleigh backscattering in an optical fiber. Optics Letters, 19(8), 593–595. doi: 10.1364/OL.19.000593
44 Ringler, A. T., & Hutt, C. R. (2010). Self‐noise models of seismic instruments. Seismological Research Letters, 81(6), 972–983.
45 Rea, N. P., Wilson, T., & Juškaitis, R. (1996). Semiconductor laser confocal and interference microscopy. Optics Communications, 125(1–3), 158–167. doi: 10.1016/0030‐4018(95)00701‐6
46 Richter, P., Parker, T., Woerpel, C., Wu, Y., Rufino, R., & Farhadiroushan, M. (2019). Hydraulic fracture monitoring and optimization in unconventional completions using a high resolution engineered fiber optic distributed acoustic sensor. First Break, 37(4), 66–68.
47 Servin, M., Kujawinska, M., & Padilla, J. M. (2017). Modern fringe pattern analysis in interferometry. In Advanced Optical Instruments and Techniques (pp. 101–152). CRC Press.
48 Shatalin, S. V., Treschikov, V. N., & Rogers, A. J. (1998). Interferometric optical time‐domain reflectometry for distributed optical‐fiber sensing. Applied Optics, 37(24), 5600–5604. doi: 10.1364/AO.37.005600
49 Shatalin, S., Mamedov, A., Potapov, V., & Sedykh, D. (1991). Optical frequency domain multiplexing of fiber‐optic sensors. The First International Soviet Fibre Optics Conference, ISFOC ′91 (pp. 307–308).
50 Subsea Fiber Optic Monitoring (SEAFOM) working group (2018). Measuring Sensor Performance—DAS Parameter Definitions and Tests SEAFOM‐MSP‐02. Retrieved from https://seafom.com/published‐documents/
51 Taylor, H. F., & Lee, C. E. (1993). U.S. Patent No. 5,194,847. Washington, DC: U.S. Patent and Trademark Office.
52 Todd, M. (2011, April). Noise propagation in a 3×3 optical demodulation scheme used for fiber Bragg grating interrogation. Paper presented in Smart Sensor Phenomena, Technology, Networks, and Systems 2011 (Vol. 7982, p. 79820A). International Society for Optics and Photonics. doi: 10.1117/12.878694
53 Unser, M. (1999). Splines: A perfect fit for signal and image processing. IEEE Signal Processing Magazine, 16(6), 22–38. doi: 10.1117/12.467162
54 Wielandt, E., & Widmer‐Schnidrig, R. (2002). Seismic sensing and data acquisition in the GRSN. Ten Years of German Regional Seismic Network (GRSN) (pp. 73–83).
55 Westbrook, P. S., Feder, K. S., Ortiz, R. M., Kremp, T., Monberg, E. M., Wu, H., et al. (2017, April). Kilometer length, low loss enhanced back scattering fiber for distributed sensing. Paper presented in 2017 25th Optical Fiber Sensors Conference (OFS) (pp. 1–5). IEEE.
56 Wuestefeld, A., & Wilks, M. (2019). How to twist and turn a fiber: Performance modeling for optimal DAS acquisitions. The Leading Edge, 38(3), 226–231.