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A micro-mechanical study of the response of unsaturated pendular state granular soils.

机译:饱和非饱和粒状土响应的微力学研究。

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摘要

A significant portion of natural and man made civil systems comprises soils in an unsaturated condition, such as compacted roadway embankments, earth dams, slopes along with others. Unsaturated soils are three-phase mixtures consisting of a skeleton of mineral particles, pore liquid (generally water), and pore gas (generally air). The response of unsaturated granular soils is strongly affected by the interaction of solid-particles with pore-water. Prediction of the static and dynamic responses of these soils is essential for the design of new systems as well as health-assessment and rehabilitation of existing ones.; In this study, a micro-mechanical model is developed to analyze the state of stresses and response of unsaturated soils in a pendular state. Both static and cyclic load conditions were considered. The discrete element method was used to idealize the soil skeleton. Bridge suction forces were used to model the effects of pendular water bridges. These bridges develop at interparticle contacts as well as the contact of particles with surfaces of structural elements or boundaries. Explicit relationships were developed to compute water bridge suction forces as a function of water content, particle dimensions and interparticle separation distance. These relationships were implemented within a discrete code. Numerical simulations were conducted to assess the impact of pendular water bridges on the stress condition of unsaturated soils. These simulations were used along with analytical derivations to develop an expression providing the effective and suction stresses within these soils. Suction stress was found to be a direct function of porosity, water content, water bridge coordination number, and water bridge fabric tensor. Simulations were also conducted to investigate the impact of moisture content on the sedimentation process and dynamic response of level and sloping ground unsaturated deposits. The outcome of these simulations was in agreement with observations of densification mechanisms of unsaturated soils, and provided valuable insight into the response mechanisms of this type of soils. The proposed micro-mechanical model was shown to be an effective tool to investigate the state of stress and response of unsaturated (pendular state) granular soil systems when subjected to static and cyclic load conditions.
机译:自然和人造土木系统的很大一部分包括处于非饱和状态的土壤,例如压实的路堤,土坝,斜坡以及其他。不饱和土壤是三相混合物,由矿物颗粒的骨架,孔隙液体(通常是水)和孔隙气体(通常是空气)组成。固体颗粒与孔隙水的相互作用极大地影响了非饱和颗粒土壤的响应。这些土壤的静态和动态响应的预测对于设计新系统以及对现有系统进行健康评估和恢复至关重要。在这项研究中,建立了一个微机械模型来分析处于悬垂状态的非饱和土的应力状态和响应。同时考虑了静态和循环负载条件。离散元法被用来理想化土壤骨架。桥吸力用于模拟摆式水桥的影响。这些桥在颗粒间接触以及颗粒与结构元件或边界表面的接触处形成。建立了明确的关系来计算水桥吸力与水含量,颗粒尺寸和颗粒间分离距离的关系。这些关系是在离散代码中实现的。进行了数值模拟,以评估摆式水桥对非饱和土应力状态的影响。这些模拟与分析推导一起使用,以开发一个表达式,在这些土壤中提供有效应力和吸力应力。发现吸应力是孔隙率,含水量,水桥配位数和水桥织物张量的直接函数。还进行了模拟研究,以调查水分含量对沉积过程的影响以及液位和倾斜地面不饱和沉积物的动力响应。这些模拟的结果与对非饱和土壤致密化机理的观察结果一致,并为这种类型的土壤的响应机理提供了有价值的见解。所提出的微力学模型被证明是研究在静态和循环载荷条件下非饱和(垂直状态)粒状土壤系统的应力状态和响应状态的有效工具。

著录项

  • 作者

    Medina, Claudia L.;

  • 作者单位

    Rensselaer Polytechnic Institute.;

  • 授予单位 Rensselaer Polytechnic Institute.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 180 p.
  • 总页数 180
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;
  • 关键词

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