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Characterizing large-scale weak interlayer shear zones using conditional random field theory

delete2023-10-01
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OA
AI
G
Gang Han
张传庆 (Chuanqing Zhang)
H
Hemant Kumar Singh
R
Rongfei Liu
C
Chen Guan
S
Shuling Huang *
周辉 cover
周辉 (Hui Zhou)
Y
Yuting Zhang
DOI:10.1016/j.jrmge.2023.02.032delete
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Abstract

Abstract

En 中文
The shear behavior of large-scale weak intercalation shear zones (WISZs) often governs the stability of foundations, rock slopes, and underground structures. However, due to their wide distribution, undulating morphology, complex fabrics, and varying degrees of contact states, characterizing the shear behavior of natural and complex large-scale WISZs precisely is challenging. This study proposes an analytical method to address this issue, based on geological fieldwork and relevant experimental results. The analytical method utilizes the random field theory and Kriging interpolation technique to simplify the spatial uncertainties of the structural and fabric features for WISZs into the spatial correlation and variability of their mechanical parameters. The Kriging conditional random field of the friction angle of WISZs is embedded in the discrete element software 3DEC, enabling activation analysis of WISZ C-2 in the underground caverns of the Baihetan hydropower station. The results indicate that the activation scope of WISZ C-2 induced by the excavation of underground caverns is approximately 0.5e1 times the main powerhouse span, showing local activation. Furthermore, the overall safety factor of WISZ C-2 follows a normal distribution with an average value of 3.697. (c) 2023 Institute of Rock and Soil Mechanics, Chinese Academy of Sciences. Production and hosting by Elsevier B.V. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/ licenses/by-nc-nd/4.0/).
Keywords:
Interlayer shear weakness zone
Baihetan hydropower station
Conditional random field
Kriging interpolation technique
Activation analysis
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Journal

Journal of Rock Mechanics and Geotechnical Engineering cover
Journal of Rock Mechanics and Geotechnical Engineering
IF:
10.2
Papers:
2.6K
Citations:
1.2W

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W
wuhan institute of rock & soil mechanics, cas
Scholars:
973
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M
ministry of water resources
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1.4K
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Y
yangtze river water resources protection bureau
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1.0K
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C
chinese academy of sciences
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56.5W
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