3D waveforms and patterning behavior in thin monodisperse and multidisperse vertically-vibrated layers

IF 2.4 3区 工程技术 Granular Matter Pub Date : 2024-12-24 DOI:10.1007/s10035-024-01488-2
Peter Watson, Sebastien Vincent Bonnieu, Ali Anwar, Marcello Lappa
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Abstract

Vibrofluidization in monodisperse granular materials is a hierarchical phenomenon involving different spatial and temporal behaviors, known to produce macroscopic structures with well-defined properties and high reproducibility. However, as witnessed by the paucity of relevant results in the literature, investigating the collective organization of particles across such different length and time scales becomes particularly challenging when multi-component systems are considered, i.e. if the considered vibrated material is not monodisperse. In this work, this problem is addressed through numerical simulation of the governing equations accounting for (dissipative) inelastic and frictional effects in the framework of a DEM (Discrete Element Method) method. Binary and ternary particle distributions are considered and, in order to filter out possible density-driven particle segregation or mixing mechanisms, particles are assumed to be iso-dense. The problem is initially analyzed through the coarse-grained lens of patterning behavior (supported by a Voronoi analysis for many representative cases) and then from a micromechanical level in which statistical data based on particle collisions and related dissipative effects are used to gain additional insights into the observed macroscopic trends. It is found that, starting from the initial traditional monodisperse case, the addition of particles with smaller sizes (while keeping the overall mass and depth of the considered layer almost unchanged) generally leads to a corrugation in the otherwise perfect symmetry of the original patterns, which is similar to that already seen in companion situations related to viscoelastic fluids. Moreover, while in the case of an initially hexagonal pattern, this topology is generally retained, in other situations, the initial perfection is taken over by less regular waveforms. Specific circumstances also exist where the initial square symmetry is lost in favor of a triangular symmetry. In all cases, segregation effects simply manifest as a preferential concentration of particles with larger size in an intermediate layer, which apparently behaves as a cohesive entity during each vibration cycle.

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薄单分散和多分散垂直振动层的三维波形和模式行为
单分散颗粒材料中的振动流化是一种涉及不同空间和时间行为的分层现象,已知可以产生具有明确性质和高再现性的宏观结构。然而,正如文献中相关结果的缺乏所证明的那样,当考虑多组分系统时,即如果考虑的振动材料不是单分散的,那么在如此不同长度和时间尺度上研究粒子的集体组织就变得特别具有挑战性。在这项工作中,通过在DEM(离散元法)方法的框架中对(耗散的)非弹性和摩擦效应的控制方程进行数值模拟来解决这个问题。考虑二元和三元粒子分布,为了过滤掉可能的密度驱动的粒子偏析或混合机制,假设粒子是等密度的。该问题最初通过图案行为的粗粒度透镜(由许多代表性案例的Voronoi分析支持)进行分析,然后从微观力学层面进行分析,其中使用基于粒子碰撞和相关耗散效应的统计数据来获得对观察到的宏观趋势的额外见解。研究发现,从最初的传统单分散情况开始,添加较小尺寸的颗粒(同时保持所考虑的层的总体质量和深度几乎不变)通常会导致原始图案的完美对称出现波纹,这与已经在粘弹性流体相关的伴随情况中看到的类似。此外,虽然在初始六边形图案的情况下,这种拓扑结构通常被保留,但在其他情况下,初始的完美被不那么规则的波形所取代。在某些特殊情况下,初始的方形对称也会被三角对称所取代。在所有情况下,偏析效应仅仅表现为中间层中较大粒径颗粒的优先集中,在每个振动周期中,中间层明显表现为一个内聚实体。
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来源期刊
Granular Matter
Granular Matter MATERIALS SCIENCE, MULTIDISCIPLINARY-MECHANICS
CiteScore
4.30
自引率
8.30%
发文量
95
期刊介绍: Although many phenomena observed in granular materials are still not yet fully understood, important contributions have been made to further our understanding using modern tools from statistical mechanics, micro-mechanics, and computational science. These modern tools apply to disordered systems, phase transitions, instabilities or intermittent behavior and the performance of discrete particle simulations. >> Until now, however, many of these results were only to be found scattered throughout the literature. Physicists are often unaware of the theories and results published by engineers or other fields - and vice versa. The journal Granular Matter thus serves as an interdisciplinary platform of communication among researchers of various disciplines who are involved in the basic research on granular media. It helps to establish a common language and gather articles under one single roof that up to now have been spread over many journals in a variety of fields. Notwithstanding, highly applied or technical work is beyond the scope of this journal.
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