Impact of Water Saturation on the Damage Evolution Characteristics of Sandstone Subjected to Freeze–Thaw Cycles

被引:0
作者
Xin Ju
Fujun Niu
Minghao Liu
Junlin He
Jing Luo
机构
[1] Northwest Institute of Eco-Environment and Resources,State Key Laboratory of Frozen Soil Engineering
[2] Chinese Academy of Sciences,State Key Laboratory of Subtropical Building Science
[3] University of Chinese Academy of Sciences,undefined
[4] South China University of Technology,undefined
来源
Rock Mechanics and Rock Engineering | 2024年 / 57卷
关键词
Water saturation; Freeze–thaw cycles; CT scanning; 3D reconstruction; Damage evolution; Pore network model;
D O I
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中图分类号
学科分类号
摘要
The degree of water saturation significantly affects the rate of rock deterioration caused by freeze–thaw weathering, which may trigger serious geological engineering hazards. This study aimed to explore the impacts of water saturation on freeze–thaw-induced deterioration of sandstone, and to improve our understanding of this damage mechanism. Sandstone specimens with varying degrees of moisture saturation were subjected to freeze–thaw tests, computed tomography scanning, and uniaxial compressive tests. The distribution of the areal porosity along the computed tomography slices, evolution of the pore volume, and changes in the pore network model parameters of the sandstone samples were visually and quantitatively characterised to assess the damage evolution. The results show that the parameters of the pore-fracture structure reflect the influence of saturation and cyclic freeze–thaw actions on rock deterioration. As the moisture saturation increased, the sandstone transformed from being dominated by pores with a radius ranging from 0 to 100 μm to being dominated by pores of 200–300 μm. The increase in the equivalent radii of pores caused the rock to be more susceptible to deformation and failure, whereas an increase in the number of throats represents a disruption of the cementation between the rock grains, making to rock more susceptible to freeze–thaw actions. Furthermore, the damage mechanisms of sandstone can be interpreted by volumetric expansion and hydrostatic pressure theory in a rapid freeze–thaw environment. The results of this study provide a comprehensive insight into the influence of water saturation on freeze–thaw-induced damage evolution of rocks in cold regions.
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页码:2143 / 2157
页数:14
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