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首页> 外文期刊>Powder Technology: An International Journal on the Science and Technology of Wet and Dry Particulate Systems >Micromechanics of granular material response during load reversals: Combined DEM and experimental study
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Micromechanics of granular material response during load reversals: Combined DEM and experimental study

机译:逆转过程中粒状材料响应的微力学:DEM与实验研究相结合

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The use of ideal granular materials with regular, simple geometries (e.g. steel spheres) allows an accurate geometrical representation of physical test specimens to be made in DEM simulations. Physical tests on these materials can then be used to validate DEM models and these DEM models can be confidently used to develop insight into the micro-scale interactions driving the macro-scale response observed in the laboratory. A novel approach to simulating triaxial tests with DEM using circumferential periodic boundaries has been developed by the authors. In a previous study this approach was validated analytically and by considering a series of laboratory monotonic triaxial tests on specimens of uniform and non-uniform steel spheres. The current paper extends the earlier research of the authors by simulating the response of specimens of about 15,000 steel spheres subject to load-unload cycles in quasi-static triaxial tests. In general, good agreement was attained between the physical tests and the DEM simulations. Following a description of the simulation and testing approach adopted, the results of the DEM simulation are used to explore the particle-scale mechanics during the load reversals. The micro-scale analyses considered both the magnitude and orientation of the contact forces as well as the motion of the particles during the load-unload cycles. These micro-scale analyses revealed that the relatively stiff, almost elastic macro-scale response observed in the load-unload cycles is underlain by a particle-scale response involving a substantial redistribution of the contact forces without a significant disturbance to the contact force network.
机译:使用具有规则,简单几何形状的理想颗粒材料(例如钢球)可以在DEM模拟中精确地绘制物理试样的几何图形。然后,可以对这些材料进行物理测试以验证DEM模型,并且可以放心地使用这些DEM模型来深入了解驱动实验室中观察到的宏观响应的微观相互作用。作者已经开发出一种新颖的方法来模拟使用周向周期性边界的DEM进行三轴测试。在先前的研究中,此方法已通过分析验证,并考虑了对均匀和不均匀钢球标本进行一系列实验室单调三轴测试的方法。本文通过在准静态三轴试验中模拟约15,000个钢球的标本在载荷-卸载循环下的响应,扩展了作者的早期研究。通常,物理测试和DEM模拟之间达成了良好的协议。在描述了所采用的仿真和测试方法之后,DEM仿真的结果将用于研究负载反向过程中的粒子尺度力学。微观分析既考虑了接触力的大小和方向,也考虑了在加载-卸载循环中颗粒的运动。这些微观分析表明,在加载/卸载循环中观察到的相对较硬,几乎是弹性的宏观响应,是颗粒尺度响应的基础,该响应涉及接触力的实质性重新分布,而不会显着干扰接触力网络。

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