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April 24, 2026Applied Sciences0 citationsOpen Access

Study on the Permanent Deformation Characteristics of Unsaturated Sand Subgrade Fill Under Cyclic Loading

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HYHongfei YinCentral South UniversityCZChuang ZhangChangsha University of Science and TechnologyJLJianzhong LiCentral South University

Key Points

  • This research focuses on understanding how unsaturated sandy subgrade deforms under cyclic loading and proposes a predictive model for its behavior.
  • Conducted cyclic tests using the GDS dynamic triaxial system under varying matric suction, confining pressure, stress amplitude, and compaction degrees.
  • Performed a total of 10,000 cycles to observe permanent deformation characteristics across different conditions.
  • Developed a coupling prediction model integrating factors affecting deformation based on experimental and literature data.
  • The permanent deformation evolves through three stages: fast, slow, and stable.
  • Prediction errors of less than 10% and R2 > 0.95 confirm the model's accuracy and robustness.
  • The developed model offers a unified way to describe permanent deformation under various conditions.

Abstract

Under long-term cyclic loading, the cumulative plastic deformation of unsaturated sandy subgrade is a key control factor for the pavement’s service performance. However, its evolution mechanism and quantitative characterization still lack a universal model. In this study, based on the GDS dynamic triaxial system, a series of cyclic tests were conducted under different conditions: matric suction from 0 to 90 kPa, net confining pressure from 30 to 120 kPa, dynamic stress amplitude from 60 to 240 kPa, and compaction degrees of 87–96%, reaching a total of 10,000 cycles. The results reveal that the permanent deformation of unsaturated sandy subgrade material evolves through three stages: fast, slow, and stable. The deformation is exponentially negatively correlated with matric suction, net confining pressure, and compaction degree, and exponentially positively correlated with dynamic stress amplitude. A coupling prediction model was developed by embedding matric suction and compaction degree factors into the Karg model. This model incorporates net confining pressure, dynamic stress amplitude, matric suction, and compaction degree. By using a normalized master curve method, the permanent deformation curves under different working conditions were compressed into a unique dimensionless function. The parameters have clear physical significance and allow for a unified description across stress, suction, state, and soil types. Experimental data, along with data from the literature, were used to validate the model, showing prediction errors of less than 10% and R2 > 0.95. The model provides a simple, high-precision, and transferable theoretical tool for long-service-life subgrade deformation control.

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Cite This Study

Yin et al. (2026) studied this question.

synapsesocial.com/papers/69eb0cb2553a5433e34b5a75https://doi.org/10.3390/app16094086
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Also Consider

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  5. 5Deformation Behaviors of Saturated Clay under Intermittent Cyclic Loading with Cyclic Confining Pressure2024 · 1 citations