Dynamic Response of Saturated Kaolin Clay under Repeated Impact Loading

The dynamic response mechanism of clayey foundations under impact loading remains insufficiently understood. This study investigates the dynamic behavior of saturated kaolin clay under repeated one-dimensional impacts using an improved Split Hopkinson pressure bar (SHPB) apparatus. Tests were conducted under different water contents, impact velocities, and specimen thicknesses, with silica sand used for comparison. The results show that saturated kaolin clay exhibits a distinct dynamic evolution mechanism governed by transient pore-water pressure, loosely adsorbed water films, and soil particles. Its peak stress is approximately 1.2-2.0 times that of silica sand, whereas its residual strain is about 0.5 times that of silica sand. Repeated impacts progressively densify the kaolin clay, increasing its dynamic apparent modulus to 2.0-4.0 times the initial value and its yield pressure to 1.9-3.9 times that of silica sand. The cutoff stress of energy absorption is about twice that of silica sand, whereas the peak energy absorption efficiency is about half. The best fitted empirical equations for peak stress and dynamic apparent modulus were obtained within the tested conditions.

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Publication Details

Journal
Canadian Geotechnical Journal
Published
2026-10-05
DOI
https://doi.org/10.1139/cgj-2026-0687
Primary Topic
Geotechnical Engineering and Soil Mechanics
Type
article
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article

Dynamic Response of Saturated Kaolin Clay under Repeated Impact Loading

Haoran Ouyang, Guoliang Dai, Zhiyu Gong, Xianting Yi et al.
Canadian Geotechnical Journal
Geotechnical Engineering and Soil Mechanics
article

Dynamic Response of Saturated Kaolin Clay under Repeated Impact Loading

Haoran Ouyang, Guoliang Dai, Zhiyu Gong, Xianting Yi, Jinglin Han, Yuqi Pan, Wei Qin
article en

Abstract

The dynamic response mechanism of clayey foundations under impact loading remains insufficiently understood. This study investigates the dynamic behavior of saturated kaolin clay under repeated one-dimensional impacts using an improved Split Hopkinson pressure bar (SHPB) apparatus. Tests were conducted under different water contents, impact velocities, and specimen thicknesses, with silica sand used for comparison. The results show that saturated kaolin clay exhibits a distinct dynamic evolution mechanism governed by transient pore-water pressure, loosely adsorbed water films, and soil particles. Its peak stress is approximately 1.2-2.0 times that of silica sand, whereas its residual strain is about 0.5 times that of silica sand. Repeated impacts progressively densify the kaolin clay, increasing its dynamic apparent modulus to 2.0-4.0 times the initial value and its yield pressure to 1.9-3.9 times that of silica sand. The cutoff stress of energy absorption is about twice that of silica sand, whereas the peak energy absorption efficiency is about half. The best fitted empirical equations for peak stress and dynamic apparent modulus were obtained within the tested conditions.

Canadian Geotechnical Journal
Wenzhou University (CN), Southeast University (BD), Southeast University (CN), China Earthquake Administration (CN)
Openalex Percentile: Top 17%
Geotechnical Engineering and Soil Mechanics
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