Forecasting the occurrence of injection-induced heterogeneous slip on rock fractures

Forecasting the slip behavior of a non-uniformly pressurized, heterogeneous creeping rock fracture, either aseismic creep or dynamic slip, is challenging based solely on laboratory and field measurements. Here we reported a simple, robust method to determine whether an aseismic creep is maintained o...

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Main Authors: Fang, Zhou, Jia, Yunzhong, Wu, Wei
Other Authors: School of Civil and Environmental Engineering
Format: Article
Language:English
Published: 2023
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Online Access:https://hdl.handle.net/10356/171233
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1712332023-10-17T07:15:11Z Forecasting the occurrence of injection-induced heterogeneous slip on rock fractures Fang, Zhou Jia, Yunzhong Wu, Wei School of Civil and Environmental Engineering Science::Geology Engineering::Civil engineering Fluid Injection Aseismic Creep Forecasting the slip behavior of a non-uniformly pressurized, heterogeneous creeping rock fracture, either aseismic creep or dynamic slip, is challenging based solely on laboratory and field measurements. Here we reported a simple, robust method to determine whether an aseismic creep is maintained or transitions to a dynamic slip during fluid injection. We reproduced the non-uniformly distributed fluid pressure and the resulting heterogenous aseismic creep on a critically stressed fracture and revealed the ratio of shear stress and frictional resistance corresponding to the fluid pressure front reaching or exceeding unity at the occurrence of dynamic slip. The determination of frictional resistance is based on the Mohr-Coulomb failure criterion with fluid pressure and friction coefficient on discrete segments of the fracture, and the length of fluid pressure front is calculated from hydraulic diffusivity and elapsed time. We used the experimental results of 9 shale fractures and 3 granite fractures to verify this method. We can also observe how the fluid pressure front propagates until the ratio of shear stress and frictional resistance approaches unity or is constrained with the ratio far below unity. This method has the potential for rapidly forecasting the injection-induced slip on a low-permeability rock fracture and simply characterizing the slip behavior of a natural, large-scale fracture during fluid injection. Ministry of Education (MOE) This study was supported by Ministry of Education, Singapore, under Academic Research Fund Tier 1 (Grant Number RG152/19). 2023-10-17T07:15:11Z 2023-10-17T07:15:11Z 2023 Journal Article Fang, Z., Jia, Y. & Wu, W. (2023). Forecasting the occurrence of injection-induced heterogeneous slip on rock fractures. Engineering Geology, 325, 107291-. https://dx.doi.org/10.1016/j.enggeo.2023.107291 0013-7952 https://hdl.handle.net/10356/171233 10.1016/j.enggeo.2023.107291 2-s2.0-85170640276 325 107291 en RG152/19 Engineering Geology © 2023 Elsevier B.V. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Science::Geology
Engineering::Civil engineering
Fluid Injection
Aseismic Creep
spellingShingle Science::Geology
Engineering::Civil engineering
Fluid Injection
Aseismic Creep
Fang, Zhou
Jia, Yunzhong
Wu, Wei
Forecasting the occurrence of injection-induced heterogeneous slip on rock fractures
description Forecasting the slip behavior of a non-uniformly pressurized, heterogeneous creeping rock fracture, either aseismic creep or dynamic slip, is challenging based solely on laboratory and field measurements. Here we reported a simple, robust method to determine whether an aseismic creep is maintained or transitions to a dynamic slip during fluid injection. We reproduced the non-uniformly distributed fluid pressure and the resulting heterogenous aseismic creep on a critically stressed fracture and revealed the ratio of shear stress and frictional resistance corresponding to the fluid pressure front reaching or exceeding unity at the occurrence of dynamic slip. The determination of frictional resistance is based on the Mohr-Coulomb failure criterion with fluid pressure and friction coefficient on discrete segments of the fracture, and the length of fluid pressure front is calculated from hydraulic diffusivity and elapsed time. We used the experimental results of 9 shale fractures and 3 granite fractures to verify this method. We can also observe how the fluid pressure front propagates until the ratio of shear stress and frictional resistance approaches unity or is constrained with the ratio far below unity. This method has the potential for rapidly forecasting the injection-induced slip on a low-permeability rock fracture and simply characterizing the slip behavior of a natural, large-scale fracture during fluid injection.
author2 School of Civil and Environmental Engineering
author_facet School of Civil and Environmental Engineering
Fang, Zhou
Jia, Yunzhong
Wu, Wei
format Article
author Fang, Zhou
Jia, Yunzhong
Wu, Wei
author_sort Fang, Zhou
title Forecasting the occurrence of injection-induced heterogeneous slip on rock fractures
title_short Forecasting the occurrence of injection-induced heterogeneous slip on rock fractures
title_full Forecasting the occurrence of injection-induced heterogeneous slip on rock fractures
title_fullStr Forecasting the occurrence of injection-induced heterogeneous slip on rock fractures
title_full_unstemmed Forecasting the occurrence of injection-induced heterogeneous slip on rock fractures
title_sort forecasting the occurrence of injection-induced heterogeneous slip on rock fractures
publishDate 2023
url https://hdl.handle.net/10356/171233
_version_ 1781793907014631424