Abstract

In order to explore the failure characteristics of sandstone under unloading conditions in deep zone with high stress, constant axial pressure and unloading confining pressure tests were conducted on a yellow sandstone sample under different initial confining pressures using the French ROCK600-50 triaxial tester, and the mechanical properties, energy conversion characteristics, and damage evolution law of sandstone failure under unloading conditions were obtained. The test results showed that the axial deformation, the confining pressure for failure, and the shear fracture energy during the failure process of sandstone under the unloading state were positively correlated with the initial confining pressure; the dilatancy amount and speed and the radial deformation were negatively correlated with the initial confining pressure, exhibiting the characteristics of dilatancy under low confining pressure and compression under high confining pressure. Before the unloading point, almost all the energy absorbed by the rock under low initial confining pressure was converted into elastic energy, while part of the energy absorbed under high initial confining pressure was converted into dissipated energy, and the higher the confining pressure, the greater the proportion of the dissipated energy converted. The higher the initial confining pressure, the greater the elastic energy, radial deformation energy, and dissipated energy at the rock fracture point. The larger the unloading confining pressure, the greater the postpeak failure energy and surplus energy of sandstone, and the greater the increase in the proportion of elastic energy converted into surplus energy. The higher the confining pressure, the larger the damage value at the unloading point; the damage speed in the unloading stage was significantly greater than that in the loading stage.

Highlights

  • With the gradual depletion of shallow mineral resources in recent years, deep mining is required. erefore, it is necessary to excavate roadways and large chambers in the deep zone, and such excavation is a kind of unloading of the rock mass [1, 2]. e loading and unloading of the rock mass are two completely different stress states, with fundamentally different mechanical properties

  • The mechanical changes caused by rock mass excavation and unloading in deep engineering are more complicated. us, studying the excavation unloading of the rock mass in the deep, high-stress zone is of great significance for understanding the mechanical behavior and damage mechanism of deep rock mass under the unloading state

  • Wen et al [6, 7] carried out loading and unloading tests on rocks of Badong formation and quartz mica schist, and developed a Advances in Civil Engineering constitutive model based on the analysis of mechanical properties

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Summary

Introduction

With the gradual depletion of shallow mineral resources in recent years, deep mining is required. erefore, it is necessary to excavate roadways and large chambers in the deep zone, and such excavation is a kind of unloading of the rock mass [1, 2]. e loading and unloading of the rock mass are two completely different stress states, with fundamentally different mechanical properties. In terms of the study on the mechanical properties of rocks under unloading effect, Wang et al [3] performed triaxial loading and unloading tests on deep-buried marbles and analyzed the failure behavior of marbles under different stress states from the perspective of mechanical parameters. Guo et al [8] theoretically studied the evolution of the mechanical properties of the rock mass under the unloading state from the perspective of elastic strain energy. It is necessary to carry out experimental research on the constant axial pressure and the unloading confining pressure of sandstone under high stress, so as to explore the failure characteristics of sandstone under different initial confining pressures from the perspectives of mechanical properties, energy conversion before failure, energy release after failure, and damage evolution

Test Method and Principle
Damage dilatancy point
Findings
Analysis on Energy Conversion of Sandstone under Unloading Conditions
Full Text
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