Tomography of the dynamic stress coefficient for stress wave prediction in sedimentary rock layer under the mining additional stress

In this study, the tomography of dynamic stress coefficient (TDSC) was established based on a mechanical model of stress wave propagation in bedding planes and a mathematical model of the stress wave attenuation in rock masses. The reliability of the TDSC was verified by a linear bedding plane model...

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Main Authors: Wenlong Shen, Guocang Shi, Yungang Wang, Jianbiao Bai, Ruifeng Zhang, Xiangyu Wang
Format: Article
Language:English
Published: Elsevier 2021-07-01
Series:International Journal of Mining Science and Technology
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2095268621000422
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spelling doaj-00208bc926d0471a8ccdea2336fc25332021-07-31T04:39:02ZengElsevierInternational Journal of Mining Science and Technology2095-26862021-07-01314653663Tomography of the dynamic stress coefficient for stress wave prediction in sedimentary rock layer under the mining additional stressWenlong Shen0Guocang Shi1Yungang Wang2Jianbiao Bai3Ruifeng Zhang4Xiangyu Wang5Henan Key Laboratory for Green and Efficient Mining & Comprehensive Utilization of Mineral Resources, School of Energy Science and Engineering, Henan Polytechnic University, Jiaozuo 454000, China; Key Laboratory of Deep Coal Resource Mining Ministry of Education, State Key Laboratory of Coal Resources and Safe Mining, China University of Mining and Technology, Xuzhou 221116, China; Collaborative Innovation Center of Coal Work Safety and Clean High Efficiency Utilization, Jiaozuo 454000, ChinaHenan Key Laboratory for Green and Efficient Mining & Comprehensive Utilization of Mineral Resources, School of Energy Science and Engineering, Henan Polytechnic University, Jiaozuo 454000, ChinaHenan Key Laboratory for Green and Efficient Mining & Comprehensive Utilization of Mineral Resources, School of Energy Science and Engineering, Henan Polytechnic University, Jiaozuo 454000, China; Corresponding author.Key Laboratory of Deep Coal Resource Mining Ministry of Education, State Key Laboratory of Coal Resources and Safe Mining, China University of Mining and Technology, Xuzhou 221116, ChinaHenan Key Laboratory for Green and Efficient Mining & Comprehensive Utilization of Mineral Resources, School of Energy Science and Engineering, Henan Polytechnic University, Jiaozuo 454000, ChinaKey Laboratory of Deep Coal Resource Mining Ministry of Education, State Key Laboratory of Coal Resources and Safe Mining, China University of Mining and Technology, Xuzhou 221116, ChinaIn this study, the tomography of dynamic stress coefficient (TDSC) was established based on a mechanical model of stress wave propagation in bedding planes and a mathematical model of the stress wave attenuation in rock masses. The reliability of the TDSC was verified by a linear bedding plane model and field monitoring. Generally, the TDSC in the dynamic stress propagation of bedding planes increases with the following conditions: (1) the increase of the normal stiffness of the bedding plane, (2) the increase of the incident angle of the stress wave, (3) the decrease of the incident frequency of the stress wave, or (4) the growth of three ratios (the ratios of rock densities, elastic moduli, and the Poisson’s ratios) of rocks on either side of bedding planes. The additional stress weakens TDSC linearly and slowly during the stress wave propagation in bedding planes, and the weakening effect increases with the growth of the three ratios. Besides, the TDSC decreases exponentially in the rock mass as propagation distance increases. In a field case, the TDSC decreases significantly as vertical and horizontal distances increase and its wave range increases as vertical distance increases in the sedimentary rock layers.http://www.sciencedirect.com/science/article/pii/S2095268621000422Tomography of the dynamic stress coefficientStress wave attenuationMining additional stressSedimentary rock layer
collection DOAJ
language English
format Article
sources DOAJ
author Wenlong Shen
Guocang Shi
Yungang Wang
Jianbiao Bai
Ruifeng Zhang
Xiangyu Wang
spellingShingle Wenlong Shen
Guocang Shi
Yungang Wang
Jianbiao Bai
Ruifeng Zhang
Xiangyu Wang
Tomography of the dynamic stress coefficient for stress wave prediction in sedimentary rock layer under the mining additional stress
International Journal of Mining Science and Technology
Tomography of the dynamic stress coefficient
Stress wave attenuation
Mining additional stress
Sedimentary rock layer
author_facet Wenlong Shen
Guocang Shi
Yungang Wang
Jianbiao Bai
Ruifeng Zhang
Xiangyu Wang
author_sort Wenlong Shen
title Tomography of the dynamic stress coefficient for stress wave prediction in sedimentary rock layer under the mining additional stress
title_short Tomography of the dynamic stress coefficient for stress wave prediction in sedimentary rock layer under the mining additional stress
title_full Tomography of the dynamic stress coefficient for stress wave prediction in sedimentary rock layer under the mining additional stress
title_fullStr Tomography of the dynamic stress coefficient for stress wave prediction in sedimentary rock layer under the mining additional stress
title_full_unstemmed Tomography of the dynamic stress coefficient for stress wave prediction in sedimentary rock layer under the mining additional stress
title_sort tomography of the dynamic stress coefficient for stress wave prediction in sedimentary rock layer under the mining additional stress
publisher Elsevier
series International Journal of Mining Science and Technology
issn 2095-2686
publishDate 2021-07-01
description In this study, the tomography of dynamic stress coefficient (TDSC) was established based on a mechanical model of stress wave propagation in bedding planes and a mathematical model of the stress wave attenuation in rock masses. The reliability of the TDSC was verified by a linear bedding plane model and field monitoring. Generally, the TDSC in the dynamic stress propagation of bedding planes increases with the following conditions: (1) the increase of the normal stiffness of the bedding plane, (2) the increase of the incident angle of the stress wave, (3) the decrease of the incident frequency of the stress wave, or (4) the growth of three ratios (the ratios of rock densities, elastic moduli, and the Poisson’s ratios) of rocks on either side of bedding planes. The additional stress weakens TDSC linearly and slowly during the stress wave propagation in bedding planes, and the weakening effect increases with the growth of the three ratios. Besides, the TDSC decreases exponentially in the rock mass as propagation distance increases. In a field case, the TDSC decreases significantly as vertical and horizontal distances increase and its wave range increases as vertical distance increases in the sedimentary rock layers.
topic Tomography of the dynamic stress coefficient
Stress wave attenuation
Mining additional stress
Sedimentary rock layer
url http://www.sciencedirect.com/science/article/pii/S2095268621000422
work_keys_str_mv AT wenlongshen tomographyofthedynamicstresscoefficientforstresswavepredictioninsedimentaryrocklayerundertheminingadditionalstress
AT guocangshi tomographyofthedynamicstresscoefficientforstresswavepredictioninsedimentaryrocklayerundertheminingadditionalstress
AT yungangwang tomographyofthedynamicstresscoefficientforstresswavepredictioninsedimentaryrocklayerundertheminingadditionalstress
AT jianbiaobai tomographyofthedynamicstresscoefficientforstresswavepredictioninsedimentaryrocklayerundertheminingadditionalstress
AT ruifengzhang tomographyofthedynamicstresscoefficientforstresswavepredictioninsedimentaryrocklayerundertheminingadditionalstress
AT xiangyuwang tomographyofthedynamicstresscoefficientforstresswavepredictioninsedimentaryrocklayerundertheminingadditionalstress
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