论文标题
胶结颗粒材料的破坏过程
Failure processes of cemented granular materials
论文作者
论文摘要
粘性或胶结颗粒材料的力学很复杂,将颗粒介质(如力链)的异质响应与明确定义的材料特性结合在一起。在这里,我们使用一个离散的元素模型(DEM)模拟,由通过柔软但可损坏的弹性键连接的弹性粒子组成,以探索这种类别的材料在单轴压缩下如何变形和失败。我们对晶粒或颗粒之间的微观相互作用与宏观材料反应之间的联系特别感兴趣。为此,将颗粒的性质和键的刚度与具有可调弹性的内聚颗粒介质的实验测量相匹配。打破键的标准还基于具有逼真的表面能量的显式格里菲斯能量平衡。通过改变粒子组装的初始体积分数,我们表明,这种简单的模型在弹性极限及其之外都重现了广泛的实验行为。这些包括剪切带,延性故障和压实带或反裂缝的不同故障模式的定量细节,以及这些模式之间的过渡。因此,目前的工作提供了一个统一的框架,以了解多孔材料的故障,例如砂岩,大理石,粉末骨料,雪和泡沫。
The mechanics of cohesive or cemented granular materials is complex, combining the heterogeneous responses of granular media, like force chains, with clearly defined material properties. Here, we use a discrete element model (DEM) simulation, consisting of an assemblage of elastic particles connected by softer but breakable elastic bonds, to explore how this class of material deforms and fails under uniaxial compression. We are particularly interested in the connection between the microscopic interactions among the grains or particles and the macroscopic material response. To this end, the properties of the particles and the stiffness of the bonds are matched to experimental measurements of a cohesive granular media with tunable elasticity. The criterion for breaking a bond is also based on an explicit Griffith energy balance, with realistic surface energies. By varying the initial volume fraction of the particle assembles we show that this simple model reproduces a wide range of experimental behaviors, both in the elastic limit and beyond it. These include quantitative details of the distinct failure modes of shear-banding, ductile failure and compaction banding or anti-cracks, as well as the transitions between these modes. The present work, therefore, provides a unified framework for understanding the failure of porous materials such as sandstone, marble, powder aggregates, snow and foam.