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An Improved Mechanistic-Empirical Creep Model for Unsaturated Soft and Stabilized Soils

机译:不饱和柔软稳定土的改进的机械经验蠕变模型

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摘要

Soft soils are usually treated to mitigate their engineering problems, such as excessive deformation, and stabilization is one of most popular treatments. Although there are many creep models to characterize the deformation behaviors of soil, there still exist demands for a balance between model accuracy and practical application. Therefore, this paper aims at developing a Mechanistic-Empirical creep model (MEC) for unsaturated soft and stabilized soils. The model considers the stress dependence and incorporates moisture sensitivity using matric suction and shear strength parameters. This formulation is intended to predict the soil creep deformation under arbitrary water content and arbitrary stress conditions. The results show that the MEC model is in good agreement with the experimental data with very high R-squared values. In addition, the model is compared with the other classical creep models for unsaturated soils. While the classical creep models require a different set of parameters when the water content is changed, the MEC model only needs one set of parameters for different stress levels and moisture conditions, which provides significant facilitation for implementation. Finally, a finite element simulation analysis of subgrade soil foundation is performed for different loading levels and moisture conditions. The MEC model is utilized to predict the creep behavior of subgrade soils. Under the same load and moisture level, the deformation of soft soil is largest, followed by lime soil and RHA–lime-stabilized soil, respectively.
机译:通常治疗软土以减轻其工程问题,例如过度变形,稳定是最流行的治疗之一。虽然有许多蠕变模型来表征土壤的变形行为,但仍然存在模型精度和实际应用之间的平衡需求。因此,本文旨在为不饱和柔软和稳定的土壤开发机械实验蠕变模型(MEC)。该模型考虑了应力依赖性,并采用耐湿性和剪切强度参数掺入水分敏感性。该制剂旨在预测任意含水量和任意应激条件下的土壤蠕变变形。结果表明,MEC模型与具有非常高的R线值的实验数据吻合良好。此外,该模型与不饱和土壤的其他经典蠕变模型进行比较。虽然古典蠕变模型需要不同一组参数时,当水含量发生变化时,MEC型号仅需要一组用于不同的应力水平和湿度条件的参数,这提供了显着的实施方便。最后,对不同装载水平和水分条件进行了路基土壤基础的有限元模拟分析。 MEC模型用于预测路基土壤的蠕变行为。在相同的载荷和水分水平下,软土的变形是最大的,其次是石灰土壤和rha-in-Lime稳定的土壤。

著录项

  • 期刊名称 Materials
  • 作者单位
  • 年(卷),期 2021(14),15
  • 年度 2021
  • 页码 4146
  • 总页数 21
  • 原文格式 PDF
  • 正文语种
  • 中图分类 外科学;
  • 关键词

    机译:软土;稳定的土壤;稻壳灰;机械 - 经验蠕变模型;原木吸附;

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