Abstract

Rock masses in underground space usually experience the coupling of high-temperature field, stress field and seepage field, which gives them complex mechanical behavior and permeability characteristics. To study the mechanical properties and permeability characteristics of red sandstone under different temperature environments, a seepage test under high temperature and triaxial compression is carried out based on the RLW-2000 multi-field coupling tester. The results show that the plastic flow of red sandstone at the stress peak under the same temperature is more obvious with the increase of confining pressure. In addition, as the confining pressure gradient increases, the permeability decreases and the trend becomes slower. And the higher the operating temperature, the easier to produce seepage channels inside the rock sample. The development of fissures is rapidly developed under the effect of temperature, so the seepage channels are widened and increased, and the permeability is greatly increased. The constitutive model of rock statistical damage considering the interaction of high temperature and osmotic pressure was constructed based on the experimental data and combining theoretical methods to reveal the characteristics of permeability evolution induced by thermal damage of rocks. The research results can be used as a reference for monitoring rock stability during geological engineering projects involving thermal–seepage–stress coupling conditions.

Highlights

  • At present, more and more geotechnical engineering projects are developing and exploring deep underground, and their environment is becoming more and more complex

  • In order to reflect the stress-strain process of rock under the coupled action of high temperature and seepage, it is very important to establish a damage constitutive model considering the combined action of osmotic pressure and high temperature

  • According to formula (14) and formulas (17)~(20), a statistical damage constitutive model of rock considering the interaction of high temperature and osmotic pressure under triaxial conditions can be obtained:

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Summary

Introduction

More and more geotechnical engineering projects are developing and exploring deep underground, and their environment is becoming more and more complex. In order to ensure the stability and safety of geotechnical engineering, the permeability characteristics of rocks under different working conditions have become an important research topic in the field of rock mechanics (Zhao., 2016; Yao et al, 2015; Chen et al., 2018b; Chen et al, 2014). Such as temperature and fluids during deep geothermal extraction can affect the permeability of the surrounding rock in the drilling well wall (Schulze et al, 2001; Wang et al, 2013; Wang et al., 2015). The research results can provide a certain reference basis for the construction and long-term stability of geotechnical engineering projects involving thermal-seepage-stress coupling

Sample preparation
Test equipment
Test principle
A C1 C2
Test procedure
Permeability characteristics of red sandstone by the steady-state method
Seepage characteristics of red sandstone under different temperatures
Model building
Determination of model parameters
Model validation
Evolution of the Weibull distribution parameters with temperatures
Findings
Conclusions
Full Text
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