Guan Yanpeng, Wang Enzhi, Liu Xiaoli, Wang Sijing, Luan Hebing
The State Key Laboratory of Hydro-Science and Engineering, Tsinghua University, Beijing 100084, China.
Sanjiangyuan Collaborative Innovation Center, Tsinghua University, Beijing 100084, China.
Materials (Basel). 2017 Aug 3;10(8):898. doi: 10.3390/ma10080898.
We have attempted a multiscale and quantified characterization method of the contact in three-dimensional granular material made of spherical particles, particularly in cemented granular material. Particle contact is defined as a type of surface contact with voids in its surroundings, rather than a point contact. Macro contact is a particle contact set satisfying the restrictive condition of a two-dimensional manifold with a boundary. On the basis of graph theory, two dual geometrical systems are abstracted from the granular pack. The face and the face set, which satisfies the two-dimensional manifold with a boundary in the solid cell system, are extracted to characterize the particle contact and the macro contact, respectively. This characterization method is utilized to improve the post-processing in DEM (Discrete Element Method) from a micro perspective to describe the macro effect of the cemented granular material made of spherical particles. Since the crack has the same shape as its corresponding contact, this method is adopted to characterize the crack and realize its visualization. The integral failure route of the sample can be determined by a graph theory algorithm. The contact force is assigned to the weight value of the face characterizing the particle contact. Since the force vectors can be added, the macro contact force can be solved by adding the weight of its corresponding faces.
我们尝试了一种针对由球形颗粒制成的三维粒状材料(特别是胶结粒状材料)中接触的多尺度和量化表征方法。颗粒接触被定义为一种在其周围存在空隙的表面接触,而非点接触。宏观接触是满足具有边界的二维流形约束条件的颗粒接触集合。基于图论,从粒状堆积中抽象出两个对偶几何系统。分别提取满足固体单元系统中具有边界的二维流形的面和面集,以表征颗粒接触和宏观接触。这种表征方法用于从微观角度改进离散单元法(DEM)中的后处理,以描述由球形颗粒制成的胶结粒状材料的宏观效应。由于裂纹与其相应接触具有相同形状,因此采用该方法表征裂纹并实现其可视化。样品的整体破坏路径可通过图论算法确定。将接触力赋予表征颗粒接触的面的权重值。由于力矢量可以相加,通过将其相应面的权重相加可求解宏观接触力。