This study examines the evolution of mechanical properties of silty sand from the Daxing' anling region under coupled freeze-thaw cycles and confining pressure, using triaxial testing. The results show that at low confining pressure and with zero or limited freeze-thaw cycles, the stress-strain response exhibits strain softening, indicative of brittle failure. In contrast, at high confining pressure or after multiple freeze-thaw cycles, the behaviour transitions to strain hardening, characterised by plastic failure. Freeze-thaw cycling markedly degrades the soil's mechanical performance. The first cycle causes a 30-40% reduction in peak deviator stress, elastic modulus, and internal friction angle. Subsequent cycles lead to progressively slower degradation, the degradation rate decreased and approached stabilization within the investigated range of 30 cycles. Although increasing confining pressure enhances mechanical behaviour by promoting soil densification, this benefit diminishes as the number of freeze-thaw cycles increases. Based on experimental data, a damage model incorporating the elastic deformation phase was developed. By linking Weibull distribution parameters to test variables, a coupled freeze-thaw and loading damage variable was formulated. Model validation shows close agreement between predicted and experimental results, accurately capturing the effect of freeze-thaw cycles on strength degradation and damage evolution during loading. These findings provide a reliable theoretical basis for the safety design of engineering structures in cold regions.
The mechanical properties of moraine soil in cold regions are significantly influenced by freeze–thaw cycles (FTCs). However, current understanding of the quantitative characteristics of its shear behavior under the coupled effect of FTCs and confining pressure is still insufficient. To address this, a series of triaxi...
Previous studies have mainly examined sandstone freeze–thaw degradation under unloaded conditions, whereas the continuous influence of sustained stress on compressive and tensile properties remains unclear. To address this issue, water-saturated specimens were subjected to axial loads of 0–2 MPa and 0–10 freeze–thaw cy...
Ying-Xian Sun, Yu-Xin Bai, Jun Hou et al.· Materials· 0 citations
This study addresses the challenge of the mechanical behavior of fractured rock masses in cold regions under freeze–thaw-fatigue coupling. Uniaxial step-incremental cyclic loading tests were conducted on double-cracked red sandstone subjected to different numbers of freeze–thaw cycles to reveal the damage evolution law...
Jian-Xi Ren, Zheng-Tao Jiang, Mufan Tan et al.· Applied Sciences· 0 citations
To address the deterioration of rock engineering stability in seasonally frozen regions, this study investigated the mechanical response and damage evolution of sandstone subjected to the coupled effects of freeze-thaw (F-T) cycles and filled fractures. Uniaxial compression tests were performed on intact specimens and...
Rui Li, Jian-Xi Ren, Kai Su et al.· Scientific Reports· 0 citations
Cement-improved aeolian sand is a potentially sustainable geomaterial that has been used in engineering applications such as subgrade filling and slope stabilization in cold regions. To investigate the degradation patterns of the dynamic mechanical properties of improved aeolian sand following freeze–thaw cycles, this...
Previous freeze–thaw studies have mainly used uniaxial tests, leaving the effects of freeze–thaw damage and confinement on basalt behavior and physically interpretable triaxial strength estimation insufficiently resolved. Here, saturated basalt specimens subjected to 0, 10, 20, and 30 freeze–thaw cycles were tested und...
Bo-Wen Li, G. Rong, Mai-Yong Jiang· Applied Sciences· 0 citations
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