论文标题

颗粒系统的基于Peridyanics的离散元素方法(Peridem)模型,涉及断裂任意形状的颗粒

Peridynamics-based discrete element method (PeriDEM) model of granular systems involving breakage of arbitrarily shaped particles

论文作者

Jha, Prashant K., Desai, Prathamesh S., Bhattacharya, Debdeep, Lipton, Robert

论文摘要

颗粒或颗粒培养基的使用,操纵,运输,传递和混合(由球形或多面体颗粒组成)通常在建筑工业(水泥和岩石碎片),药品(片剂)(片剂)和运输(镇流器)中遇到。阐明颗粒培养基的行为与粒子流失(即粒子磨损和随后的粒子碎片化)对于预测使用此类介质的性能和提高工程系统效率至关重要。基于离散的元素方法(DEM)技术可以描述颗粒之间的相互作用,但无法建模粒子内变形,尤其是粒子内断裂。另一方面,Peridyanics提供了考虑颗粒之间的接触力引起的粒子内变形和断裂的方法。本研究提出了一个混合模型,称为\ textit {Peridem},结合了Peridyanics和Dem的优势。可以调整模型参数以实现所需的DEM接触力,阻尼效应和粒子内刚度。彻底研究了多粒子系统的两种粒子影响和压缩行为。该模型通常可以说明任何任意形状的粒子。本研究模拟了球形,六角形和非凸线粒子形状。明确研究了网状分辨率对粒子内细胞动力学的影响。提出的混合模型为探索离散粒子动力学遇到的复杂相互作用开辟了新的途径,涉及力链的形成,粒子互锁,粒子流失,磨损和最终破裂。

Usage, manipulation, transport, delivery, and mixing of granular or particulate media, comprised of spherical or polyhedral particles, is commonly encountered in industrial sectors of construction (cement and rock fragments), pharmaceutics (tablets), and transportation (ballast). Elucidating particulate media's behavior in concert with particle attrition (i.e., particle wear and subsequent particle fragmentation) is essential for predicting the performance and increasing the efficiency of engineering systems using such media. Discrete element method (DEM) based techniques can describe the interaction between particles but cannot model intra-particle deformation, especially intra-particle fracture. On the other hand, peridynamics provides the means to account for intra-particle deformation and fracture due to contact forces between particles. The present study proposes a hybrid model referred to as \textit{PeriDEM} that combines the advantages of peridynamics and DEM. The model parameters can be tuned to achieve desired DEM contact forces, damping effects, and intra-particle stiffness. Two particle impacts and compressive behavior of multi-particle systems are thoroughly investigated. The model can account for any arbitrarily shaped particle in general. Spherical, hexagonal, and non-convex particle shapes are simulated in the present study. The effect of mesh resolution on intra-particle peridynamics is explicitly studied. The proposed hybrid model opens a new avenue to explore the complicated interactions encountered in discrete particle dynamics that involve the formation of force chains, particle interlocking, particle attrition, wear, and the eventual breakage.

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