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    مؤتمر

    المؤلفون: Pokatilov, V.

    وصف الملف: application/pdf

    العلاقة: Проблемы геологии и освоения недр : труды XXVII Международного молодежного научного симпозиума имени академика М.А. Усова, посвященного 160-летию со дня рождения академика В.А. Обручева и 140-летию академика М.А. Усова, основателям Сибирской горно-геологической школы, 3-7 апреля 2023 г., г. Томск. Т. 2; Pokatilov, V. Multi-objective AHM workflow intergrating the 4D seismic data / V. Pokatilov; Scientific advisor V. S. Rukavishnikov; National Research Tomsk Polytechnic University // Проблемы геологии и освоения недр. — Томск : Изд-во ТПУ, 2023. — Т. 2. — С. 93-95.; http://earchive.tpu.ru/handle/11683/77857Test

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    المساهمون: The reported study was funded by the Russian Foundation for Basic Research and the Perm Territory, Project Number 20-45-596032, Исследование выполнено при финансовой поддержке РФФИ и Пермского края в рамках научного проекта №20-45-596032

    المصدر: Gornye nauki i tekhnologii = Mining Science and Technology (Russia); Vol 8, No 1 (2023); 13-21 ; Горные науки и технологии; Vol 8, No 1 (2023); 13-21 ; 2500-0632

    وصف الملف: application/pdf

    العلاقة: https://mst.misis.ru/jour/article/view/467/338Test; https://mst.misis.ru/jour/article/view/467/339Test; Mateeva A., Mestayer J., Cox B. et al. Advances in distributed acoustic sensing (DAS) for VSP. In: SEG Technical Program Expanded Abstracts 2012. Society of Exploration Geophysicists; 2012. https://doi.org/10.1190/segam2012-0739.1Test; Parker T., Shatalin S., Farhadiroushan M. Distributed Acoustic Sensing – a new tool for seismic applications. First Break. 2014;32(2):61–69. https://doi.org/10.3997/1365-2397.2013034Test; Wu X., Willis M. E., Palacios W. et al. Compressionaland shear-wave studies of distributed acoustic sensing acquired vertical seismic profile data. The Leading Edge. 2017;36(12):987–993. https://doi.org/org/10.1190/tle36120987.1Test; Hartog A., Kotov O. I., Liokumovich L. B. The optics of distributed vibration sensing. In: Second EAGE Workshop on Permanent Reservoir Monitoring 2013 – Current and Future Trends. Netherlands: EAGE Publications BV; 2013. https://doi.org/10.3997/2214-4609.20131301Test; Shatalin S.V., Treschikov V.N., Rogers A. J. Interferometric optical time-domain reflectometry for distributed optical-fiber sensing. Applied Optics. 1998;37(24):5600–5604. https://doi.org/10.1364/AO.37.005600Test; Dean T., Papp B., Hartog A. Wavenumber response of data recorded using distributed fibre-optic systems. In: 3rd EAGE Workshop on Borehole Geophysics. Netherlands: EAGE Publications BV; 2015. https://doi.org/10.3997/2214-4609.201412215Test; Dean T., Cuny T., Hartog A. H. The effect of gauge length on axially incident P-waves measured using fibre optic distributed vibration sensing: Gauge length effect on incident P-waves. Geophysical Prospecting. 2017;65(1):184–193. https://doi.org/10.1111/1365-2478.12419Test; Bona A., Dean T., Correa J. et al. Amplitude and phase response of DAS receivers. In: 79th EAGE Conference and Exhibition 2017. Netherlands: EAGE Publications BV; 2017. https://doi.org/10.3997/2214-4609.201701200Test; Stork A. L., Baird A. F., Horne S.A. et al. Application of machine learning to microseismic event detection in distributed acoustic sensing data. Geophysics. 2020;85(5):KS149–KS160. https://doi.org/10.1190/geo2019-0774.1Test; Näsholm S. P., Iranpour K., Wuestefeld A. et al. Array signal processing on distributed acoustic sensing data: Directivity effects in slowness space. Journal of Geophysical Research: Solid Earth. 2022;127(2). https://doi.org/10.1029/2021JB023587Test; Willis M. E., Barfoot D., Ellmauthaler A., Wu X. et al. Quantitative quality of distributed acoustic sensing vertical seismic profile data. The Leading Edge. 2016;35(7):605–609. https://doi.org/10.1190/tle35070605.1Test; Судакова М. С., Белов М. В., Понимаскин А. О. и др. Особенности обработки данных вертикального сейсмического профилирования морских малоглубинных скважин с волоконно-оптическими распределенными системами. Геофизика. 2021;(6):110–118.; Riedel M., Cosma C., Enescu N. et al. Underground Vertical Seismic Profiling with conventional and fiber-optic systems for exploration in the Kylylahti polymetallic mine, eastern Finland. Minerals (Basel). 2018;8(11):538. https://doi.org/10.3390/min8110538Test; Bellefleur G., Schetselaar E., Wade D. et al. Vertical seismic profiling using distributed acoustic sensing with scatter-enhanced fibre-optic cable at the Cu–Au New Afton porphyry deposit, British Columbia, Canada. Geophysical Prospecting. 2020;68(1):313–333. https://doi.org/10.1111/1365-2478.12828Test; Yaroslavtsev A. G., Fatkin K. B. Mine seismic surveys for the control of safety pillars in potash mines. In: Engineering and Mining Geophysics 2020. European Association of Geoscientists & Engineers; 2020. https://doi.org/10.3997/2214-4609.202051043Test; Санфиров И. А., Ярославцев А. Г., Чугаев А. В. и др. Контроль формирования ледопородного ограждения шахтного ствола комплексом наземных и скважинных сейсморазведочных методов. Физико-технические проблемы разработки полезных ископаемых. 2020;(3):34-46. https://doi.org/10.15372/FTPRPI20200304Test; Chugaev A.V., Sanfirov I.A., Lisin V.P. et al. The integrated borehole seismic surveys at the verkhnekamskoye potassium salt deposit. In: Lecture Notes in Networks and Systems. Vol. 342. Cham: Springer International Publishing; 2022. Pp. 255–269. https://doi.org/10.1007/978-3-030-89477-1_25Test; Correa J., Egorov A., Tertyshnikov K. et al. 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. 2017;36(12):962–1044. https://doi.org/10.1190/tle36120994a1.1Test; Kuvshinov B. N. Interaction of helically wound fibre-optic cables with plane seismic waves. Geophysical Prospecting. 2016;64(3):671–688. https://doi.org/10.1111/1365-2478.12303Test; den Boer J. J., Mateeva A., Pearce J. G. et al. Detecting broadside acoustic signals with a fiber optical distributed acoustic sensing (DAS) assembly. Standard Patent WO2013/090544/A1, 2013. URL: https:// patentimages.storage.googleapis.com/6a/52/dc/6513f050b2f66c/AU2012352253C1.pdf; Tertyshnikov K., Bergery G., Freifeld B., Pevzner R. Seasonal effects on DAS using buried helically wound cables. In: EAGE Workshop on Fiber Optic Sensing for Energy Applications in Asia Pacific. European Association of Geoscientists & Engineers; 2020. https://doi.org/10.3997/2214-4609.202070007Test; Stork A. L., Chalari A., Durucan S. et al. Fibre-optic monitoring for high-temperature Carbon Capture, Utilization and Storage (CCUS) projects at geothermal energy sites. First Break. 2020;38(10):61–67. https://doi.org/10.3997/1365-2397.fb2020075Test; Baird A. Modelling the response of helically wound DAS cables to microseismic arrivals. In: First EAGE Workshop on Fibre Optic Sensing. European Association of Geoscientists & Engineers; 2020. https://doi.org/10.3997/2214-4609.202030019Test; Egorov A., Charara M., Alfataierge E., Bakulin A. Realistic modeling of surface seismic and VSP using DAS with straight and shaped fibers of variable gauge length. In: First International Meeting for Applied Geoscience & Energy Expanded Abstracts. Tulsa, OK, USA: Society of Exploration Geophysicists; 2021. Pp. 184–193. https://doi.org/10.1190/segam2021-3576626.1Test; https://mst.misis.ru/jour/article/view/467Test

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