The mechanism of stability of fault system inducing roof water-inrush

Author:

Zhijing Ma1,Yanheng Li23,Kai Bian23ORCID,Zhibin Yang4,Lijun Gao5,Bo Liu3,Yu Pang3,Panchal Balaji2

Affiliation:

1. School of Water Conservancy and Hydroelectic Power, Hebei University of Engineering, Hebei, China

2. Hebei Collaborative Innovation Center of Coal Exploitation, Hebei University of Engineering, Hebei, China

3. School of Earth Science and Engineering, Hebei University of Engineering, Hebei, China

4. Xi’an Researsh Institute, China Coal Technology and Engineering Group Corp, Xi’an, China

5. Shaanxi Coal and Chemical Industry Group Co, Ltd., Shaanxi, China

Abstract

This paper analyzes the strain stability during mining, which often causes a water inrush. Mining couses costant stress on the fault zone, which is a loading process on the system composed of fault material and surrounding medium. A cusp catastrophe model is presented and the necessary and sufficient conditions leading to fault systems are discussed. The fault zone is assumed to be planar and is a combination of two media: medium-1 is elastic-brittle or strain-hardening and medium-2 is strain-softening. The shear stress-strain constitutive model for the strain-softening medium is described by the Weibull’s distribution law. It was found that the instability of a fault system mainly relies on the ratio between the stiffness of medium1 to the post-peak stiffness of the strain-softening medium, and the homogeneity index of strain-softening medium and the bifurcation point, k ≤ 1, which is the turning point of the fault system from stability to potential instability. One can judge the occurrence of fault instability from this feature and regard the index D as a parameter, which reflects the precursory abnormality of a fault.

Funder

National Youth Science Foundation of China

Natural Science Foundation of Hebei Province

Publisher

SAGE Publications

Subject

Energy Engineering and Power Technology,Fuel Technology,Nuclear Energy and Engineering,Renewable Energy, Sustainability and the Environment

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