Rock and Soil Mechanics ›› 2026, Vol. 47 ›› Issue (9): 2997-3008.doi: 10.16285/j.rsm.2025.1077

• Fundamental Theory and Experimental Research • Previous Articles     Next Articles

Experimental study on hydraulic response model of an expansive soil slope with inherent fissures

HU Jiang1, 2, ZHANG Yu-han1, LI Xing1, 2, LU Yang3   

  1. 1. The National Key Laboratory of Water Disaster Prevention, Nanjing Hydraulic Research Institute, Nanjing, Jiangsu 210029, China; 2. Dam Safety Management Center of Ministry of Water Resources, Nanjing, Jiangsu 210029, China; 3. College of Water Conservancy and Hydropower Engineering, Hohai University, Nanjing, Jiangsu 210098, China
  • Received:2025-10-07 Accepted:2026-02-05 Online:2026-09-11 Published:2026-09-01
  • Supported by:
    This work was supported by the National Natural Science Foundation of China (52179138, 52579131), the Joint Fund for Scientific Research of Yellow River (U2443232) and the Postgraduate Thesis Fund of Nanjing Hydraulic Research Institute (Yy725001).

Abstract: The stability of deeply excavated canal slopes in expansive soil is governed by groundwater-level fluctuations, wetting–drying cycles, and inherent fissures. To investigate these effects, a hydraulic response model test was conducted on a slope with inherent fissures. The left side of the slope contained fissures, whereas the right side remained intact for comparison. The experiment included four wetting–drying cycles, groundwater-level variations, and one prolonged rainfall event. The results showed that: 1) fissures altered the water distribution, resulting in pronounced spatial variations in water content on the left side, whereas the right side became more uniform after prolonged rainfall; 2) the pore water pressure in the deep soil was primarily controlled by the groundwater level, and the response was stronger on the left side; 3) the matric suction of the deep soil on the left side exhibited a response pattern different from that induced by wetting–drying cycles alone; 4) matric suction continuously decreased with increasing wetting–drying cycles, reducing shear strength and accelerating slope displacement, with a lag in the displacement response. The combined effects of groundwater-level fluctuations and inherent fissures intensified the deformation and failure of the slope.

Key words: slope, expansive soil, matric suction, pore water pressure, fissures, wetting-drying cycle, groundwater

CLC Number: 

  • TV32+1
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