岩土力学 ›› 2026, Vol. 47 ›› Issue (9): 2938-2952.doi: 10.16285/j.rsm.2025.0911CSTR: 32223.14.j.rsm.2025.0911

• 基础理论与实验研究 • 上一篇    下一篇

基于电阻率的人工冻土强度特性评价研究

李志杰1,储亚1,蔡国军2, 3, 4,陈熠坤1,闫超2, 3,刘松玉4   

  1. 1. 南京工业大学 交通运输工程学院,江苏 南京 211816;2. 安徽建筑大学 膨胀土力学与工程研究院,安徽 合肥 236025; 3. 安徽省智能地下探测重点实验室,安徽 合肥 230009;4. 东南大学 岩土工程研究所,江苏 南京 210096
  • 收稿日期:2025-08-25 接受日期:2026-01-26 出版日期:2026-09-11 发布日期:2026-08-28
  • 通讯作者: 储亚,男,1985年生,博士,副教授,硕士研究生导师,主要从事环境岩土工程等方面的教学研究工作。E-mail: chuya@njtech.edu.cn
  • 作者简介:李志杰,男,2001年生,硕士研究生,主要从事环境岩土工程等方面的研究工作。E-mail: lzj123@njtech.edu.cn
  • 基金资助:
    国家杰出青年科学基金项目(No.42225206);国家自然科学基金青年项目(No.42202303);江苏省自然科学基金青年项目(No.BK20220355);安徽省膨胀土力学与工程研究院开放课题项目(No.AHPZY2023KF02);江苏省地质工程环境智能监控工程研究中心开放基金项目(No.2023-ZNJKJJ-07)。

Evaluation of strength characteristics of artificial permafrost based on electrical resistivity

LI Zhi-Jie1, CHU Ya1, CAI Guo-jun2, 3, 4, CHEN Yi-kun1, YAN Chao2, 3, LIU Song-yu4   

  1. 1. College of Transportation Engineering, Nanjing Tech. University, Nanjing, Jiangsu 211816, China; 2. Institute of Expansive Soil Mechanics and Engineering, Anhui Jianzhu University, Hefei, Anhui 236025, China; 3. Anhui Provincial Key Laboratory of Intelligent Underground Detection, Hefei, Anhui 230009, China; 4. Institute of Geotechnical Engineering, Southeast University, Nanjing, Jiangsu 210096, China
  • Received:2025-08-25 Accepted:2026-01-26 Online:2026-09-11 Published:2026-08-28
  • Supported by:
    This work was supported by the National Science Fund for Distinguished Young Scholars (42225206), the Young Scientists Fund of National Natural Science Foundation of China (42202303), the Youth Project of Natural Science Foundation of Jiangsu Province (BK20220355), Anhui Institute of Expansive Soil Mechanics and Engineering (AHPZY2023KF02) and the Open Fund of Jiangsu Geological Engineering Environment Intelligent Monitoring Engineering Research Center (2023-ZNJKJJ-07).

摘要: 人工冻结法广泛应用于复杂环境岩土工程及应急处理,但冻土强度特性的原位评价尚不成熟。采用自主研发的嵌入式四电极系统,对长江河漫滩富水粉质黏土开展强度与电法测试,结果表明:人工冻土无侧限抗压强度随温度降低呈“缓升—激增—缓升”特征,随干密度增大而升高;与含水率呈特殊关联,在临界含水率为22%时达到峰值,超此值因冻胀裂纹下降,近饱和时转为冰骨架主导,强度小幅回升但低于峰值。电阻率随温度降低呈阶段性变化:低温阶段因自由水冻结、孔隙曲折度增加而急剧升高,含水率越高导电弱化越显著,存在临界干密度使导电机制由孔隙水转为结合水与土骨架主导,此时电阻率随干密度略降;更低温度下以结合水导电为主,增速放缓。饱和度与电阻率呈幂函数关系,结合水冻结及冻胀变形放大其敏感性。无侧限抗压强度与变形模量呈强线性关系,且均随电阻率升高而增大。基于电阻率构建了连接宏观特性与微观结构、水分变化的预测模型,从细观层面解释了模型离散性及精度问题。Brunnauer-Emmett-Teller(BET)法与扫描电子显微镜(scanning electron microscope,简称SEM)试验验证表明:孔隙参数随含水率增大,冻融后团聚体由片状转为蜂窝状,高含水率时团聚体重组并且微孔隙扩展为连续大孔隙,揭示了冻融微观损伤过程及水冰相变与孔隙结构耦合对强度的影响机制。本研究深化了多参数耦合下冻土工程特性与电阻率响应机制的理解,为构建人工冻土场地高效精准的电阻率−工程特性评价模型体系提供支撑。

关键词: 人工冻土电阻率, 四相电极法, 无侧限抗压强度, 电学预测模型, 微观损伤机制

Abstract: Artificial ground freezing (AGF) is widely applied in geotechnical engineering under complex site conditions. However, in situ methods for evaluating the strength of frozen soil are still insufficiently developed. This study employs a self-developed embedded four-electrode system to investigate the strength and electrical properties of water-rich silty clay collected from the Yangtze River floodplain. Results show that unconfined compressive strength (UCS) increases as temperature decreases, following a “slow rise–sharp increase–slow rise” pattern, and also increases with dry density. A critical water content of 22% produces the peak strength. Beyond this threshold, frost-heave-induced cracking reduces the strength. Under near-saturated conditions, the formation of an ice-skeleton structure partially restores the strength. Resistivity increases in stages as temperature decreases, primarily because of free-water freezing and increased pore tortuosity. At higher water contents, conductivity diminishes more sharply. A transition in the conduction mechanism occurs at a critical dry density, with conduction shifting from pore-water dominance to bound-water and soil-matrix dominance. A power-law relationship is observed between saturation and resistivity, and the freezing of bound water together with frost deformation further enhances this sensitivity. Unconfined compressive strength and deformation modulus are strongly linearly correlated, and both increase with resistivity. A resistivity-based predictive model is established to link macroscopic strength to microstructural evolution and moisture variation, thereby explaining the model dispersion and predictive accuracy from a microscopic perspective. Brunnauer-Emmett-Teller (BET) and Scanning electron microscope (SEM) analyses reveal that increasing water content enlarges the pore structure. In addition, freeze–thaw cycles transform soil aggregates from flaky to honeycomb-like forms and promote the development of micropores into continuous macropores. These microstructural changes illustrate the damage process and demonstrate how the coupling between water–ice phase transitions and pore evolution influences soil strength. This study enhances understanding of the multi-parameter coupling between frozen soil properties and resistivity, thereby supporting the development of accurate resistivity-based evaluation models for artificially frozen ground.

Key words: artificial permafrost resistivity, four-phase electrode method, unconfined compressive strength, electrical prediction model, microscopic damage mechanisms

中图分类号: TU445
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