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Modélisation numérique du comportement des milieux granulaires à partir de signaux pénétrométriques : approche micromécanique par la méthode des éléments discrets

机译:渗透信号对粒状介质行为的数值模拟:微机械方法的离散元法

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摘要

In the field of in situ mechanical characterization of soils, penetration tests are commonly used. Penetration tests measure the properties of soils in the domain of large deformations. The tip resistances, deduced from pile driving theory, can be measured either in dynamic conditions (q d ) either in static conditions (q c ). Recently, the measurement technique in dynamic conditions has been improved and it is now possible to record the whole response of the soil during one impact in terms of tip force and penetration distance. The exploitation of this new curve provides information not only on dynamic tip resistance but also on additional mechanical parameters involved during the driving of the tip. The objective of this work is to develop a numerical model in 2D able to reproduce the penetrometric record obtained experimentally by static or dynamic penetration tests. This model is based on the discrete element method with a simple linear contact model. After the validation of the model, a parametric study was performed essentially on the loading type (static or dynamic), the penetration rate, the particle size of the granular material and the arrangement (density variation). Besides the influence of these parameters on the penetrometer signals and the tip resistance, a particular attention was focused on micromechanical analysis: energy dissipation in the medium, force chain evolution, contact orientation. This analysis requires the development of specific numerical tools to better understand the penetration mechanism and try to explain the macroscopic mechanical response obtained. The penetration rate influences significantly only in the dense flow regime on the static and dynamic penetration tests. There is no significant microscopic difference between static and dynamic penetration tests with similar penetration rates. Regarding the influence of the characteristics of the material, the numerical results obtained conform to the real results when the particle friction or the compactness of the medium varies. Concerning the particle size, the dynamic signal variation and the dynamic tip force increases when the average particle diameter increases.
机译:在土壤的原位机械表征领域,通常使用渗透测试。渗透测试可以测量大变形范围内的土壤特性。根据打桩理论推导的端部阻力可以在动态条件下(q d)或在静态条件下(q c)进行测量。最近,对动态条件下的测量技术进行了改进,现在可以记录一次撞击过程中土壤的整体响应(根据叶尖力和穿透距离)。利用该新曲线不仅可以提供有关尖端动态阻力的信息,还可以提供有关尖端驱动过程中涉及的其他机械参数的信息。这项工作的目的是开发2D数值模型,该模型能够重现通过静态或动态渗透测试通过实验获得的渗透记录。该模型基于具有简单线性接触模型的离散元素方法。在模型验证之后,基本上对载荷类型(静态或动态),穿透率,粒状材料的粒径和排列方式(密度变化)进行了参数研究。除了这些参数对针入度计信号和尖端电阻的影响外,还特别关注微机械分析:介质中的能量耗散,力链演化,接触方向。这种分析需要开发特定的数值工具,以更好地理解渗透机制并试图解释所获得的宏观机械响应。渗透率仅在静态和动态渗透测试中仅在稠密流动状态中有显着影响。具有相同渗透率的静态和动态渗透测试之间没有显着的微观差异。关于材料特性的影响,当颗粒摩擦或介质的致密性发生变化时,获得的数值结果与实际结果一致。关于粒径,当平均粒径增加时,动态信号变化和动态尖端力增加。

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    Tran Quoc Anh;

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  • 年度 2015
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