东北大学学报(自然科学版) ›› 2025, Vol. 46 ›› Issue (10): 132-142.DOI: 10.12068/j.issn.1005-3026.2025.20240070

• 资源与土木工程 • 上一篇    

饱和砂岩冻融循环损伤演化特性

徐涛1, 邱景畅1, 袁阳2, 许斌1   

  1. 1.东北大学 资源与土木工程学院,辽宁 沈阳 110819
    2.应急管理部 信息研究院,北京 100029
  • 收稿日期:2024-03-28 出版日期:2025-10-15 发布日期:2026-01-13
  • 作者简介:徐 涛(1975—),男,湖北随州人,东北大学教授,博士生导师.
  • 基金资助:
    国家自然科学基金资助项目(42172312);国家自然科学基金资助项目(51950410595);科技部外国专家重点支撑计划项目(ZDKY2023077L)

Damage Evolution Characteristics of Saturated Sandstone in Freeze-Thaw Cycles

Tao XU1, Jing-chang QIU1, Yang YUAN2, Bin XU1   

  1. 1.School of Resources & Civil Engineering,Northeastern University,Shenyang 110819,China
    2.Information Research Institute,Ministry of Emergency Management,Beijing 100029,China. Corresponding author: XU Tao,E-mail: xutao@mail. neu. edu. cn
  • Received:2024-03-28 Online:2025-10-15 Published:2026-01-13

摘要:

为揭示寒区岩体工程中岩石在冻融循环作用下变形损伤机制,通过室内冻融循环试验、低场核磁共振试验以及声发射监测试验对饱和砂岩孔隙度变化和宏观强度力学特性进行了分析,建立了饱和岩石冻融循环温度-渗流-应力-损伤耦合模型并进行了验证,开展了饱和砂岩在不同冻融循环次数下孔隙度变化及损伤演化数值模拟.研究结果表明:随着冻融次数增加,砂岩孔隙度增长速率变快,单轴抗压强度降低,且下降速率逐渐加快.孔隙尺寸与数量的变化引起岩石中砂岩强度降低.冻融受载荷作用下砂岩损伤是冻融损伤和载荷损伤共同作用的结果,且随着应变增加,砂岩的损伤变量最终趋于1.研究结果可为寒区岩石力学特性研究提供了理论参考和试验依据.

关键词: 冻融循环, 核磁共振, 孔隙度, 损伤演化, 耦合模型

Abstract:

To reveal the deformation and damage mechanism of rock in cold region rock engineering under freeze-thaw cycles, the porosity changes and macroscopic strength mechanical properties of saturated sandstone were analyzed through laboratory freeze-thaw cycle tests, low-field nuclear magnetic resonance experiments, and acoustic emission (AE) monitoring. A coupled temperature, permeability, stress, and damage model for saturated rock under freeze-thaw cycles was developed and validated. Numerical simulations were carried out to investigate the porosity variation and damage evolution in saturated sandstone subjected to different freeze-thaw cycles. The results indicate that as freeze-thaw cycles increase, the porosity growth rate of sandstone increases, while the uniaxial compressive strength decreases, and the rate of strength reduction gradually accelerates. The changes in pore size and quantity lead to deterioration in the strength of sandstone. Freeze-thaw-induced damage in sandstone arises from the combined effects of freeze-thaw cycles and loading, with the damage variable eventually approaching 1 as strain increases. The findings offer theoretical insights and experimental data for understanding the mechanical characteristics of rocks in cold regions.

Key words: freeze-thaw cycle, nuclear magnetic resonance, porosity, damage evolution, coupled model

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