Failure mechanism and coupled static-dynamic loading theory in deep hard rock mining: A review

Механизм разрушения и теория сопряжённого статико-динамического нагружения при подземной разработке глубокозалегающих месторождений в крепких породах: обзор
Longjun Dong, Fengqiang Gong, Zilong Zhou, Xibing Li, Kun Du, Ming Tao, Chunde Ma, Tubing Yin
2017-06-28

coupled static-dynamic loadingdeep hard rock miningmicroseismic source locationrockburst mechanismtrue triaxial unloading compression
Rock failure phenomena, such as rockburst, slabbing (or spalling) and zonal disintegration, related to deep underground excavation of hard rocks are frequently reported and pose a great threat to deep mining. Currently, the explanation for these failure phenomena using existing dynamic or static rock mechanics theory is not straightforward. In this study, new theory and testing method for deep underground rock mass under coupled static-dynamic loading are introduced. Two types of coupled loading modes, i.e. “critical static stress + slight disturbance” and “elastic static stress + impact disturbance”, are proposed, and associated test devices are developed. Rockburst phenomena of hard rocks under coupled static-dynamic loading are successfully reproduced in the laboratory, and the rockburst mechanism and related criteria are demonstrated. The results of true triaxial unloading compression tests on granite and red sandstone indicate that the unloading can induce slabbing when the confining pressure exceeds a certain threshold, and the slabbing failure strength is lower than the shear failure strength according to the conventional Mohr-Column criterion. Numerical results indicate that the rock unloading failure response under different in situ stresses and unloading rates can be characterized by an equivalent strain energy density. In addition, we present a new microseismic source location method without premeasuring the sound wave velocity in rock mass, which can efficiently and accurately locate the rock failure in hard rock mines. Also, a new idea for deep hard rock mining using a non-explosive continuous mining method is briefly introduced.
1
An equivalent strain energy density characterizes unloading failure responses across different in-situ stresses and unloading rates; a velocity-independent microseismic location method is also introduced.
2
Laboratory tests successfully reproduce rockbursts under coupled loading and establish associated rockburst mechanisms and criteria.
3
The review introduces coupled static-dynamic loading theory and testing methods for explaining hard-rock failures in deep underground excavations.
4
True-triaxial tests show that unloading can induce granite and red-sandstone slabbing above a confining-pressure threshold, with lower strength than shear failure predicted by the conventional Mohr-Coulomb criterion.
5
Two loading modes are proposed: “critical static stress + slight disturbance” and “elastic static stress + impact disturbance,” with dedicated test devices.

Deep hard rock mass subject to underground excavation and coupled static-dynamic loading

Failure mechanisms and failure responses of hard rock, including rockburst, slabbing/spalling, and zonal disintegration, under coupled loading and unloading conditions

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2017-06-28
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Longjun Dong
Fengqiang Gong
Zilong Zhou
Xibing Li
Kun Du
Ming Tao
Chunde Ma
Tubing Yin
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