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3D generation of realistic granular samples based on random fields theory and Fourier shape descriptors

机译:基于随机场理论和傅立叶形状描述符的3D逼真的颗粒样本生成

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The inability of simulating the grain shapes of granular media accurately has been an outstanding issue preventing particle-based methods such as discrete element method from providing meaningful information for relevant scientific and engineering applications. In this study we propose a novel statistical method to generate virtual 3D particles with realistically complex yet controllable shapes and further pack them effectively for use in discrete-element modelling of granular materials. We combine the theory of random fields for spherical topology with a Fourier-shape-descriptor based method for the particle generation, and develop rigorous solutions to resolve the mathematical difficulties arising from the linking of the two. The generated particles are then packed within a prescribed container by a cell-filling algorithm based on Constrained Voronoi Tessellation. We employ two examples to demonstrate the excellent control and flexibility that the proposed method can offer in reproducing such key characteristics as shape descriptors (aspect ratio, roundness, sphericity, presence of facets, etc.), size distribution and solid fraction. The study provides a general and robust framework on effective characterization and packing of granular particles with complex shapes for discrete modelling of granular media.
机译:不能精确地模拟粒状介质的晶粒形状一直是一个突出的问题,它阻碍了基于粒子的方法(例如离散元素方法)无法为相关的科学和工程应用提供有意义的信息。在这项研究中,我们提出了一种新颖的统计方法,可以生成具有现实复杂但可控制的形状的虚拟3D粒子,并进一步有效地打包它们,以用于颗粒材料的离散元素建模。我们将球形拓扑的随机场理论与基于傅立叶形状描述子的粒子生成方法相结合,并开发出严格的解决方案来解决两者之间的数学难题。然后通过基于约束Voronoi镶嵌的单元填充算法将生成的粒子填充到指定的容器中。我们用两个例子来证明所提出的方法在再现形状描述符(长宽比,圆度,球形度,小平面的存在等),尺寸分布和固体分数等关键特征时可以提供出色的控制和灵活性。该研究为有效表征和填充形状复杂的粒状颗粒提供了一个通用而强大的框架,可用于粒状介质的离散建模。

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