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Impact of cohesion forces on particle mixing and segregation.

机译:内聚力对颗粒混合和分离的影响。

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The objective of this work is to advance the fundamental understanding of mixing and segregation of cohesive granular materials. Cohesion can arise from a variety of sources: van der Waals forces, electrostatic forces, liquid bridging (capillary) forces. These forces may play a significant role in the processing of fine and/or moist powders in many industries, from pharmaceuticals to materials synthesis; however, despite its prevalence, there is only limited information available in the literature on processing of cohesive materials. Instead, the vast majority of work has been directed at the study of non-cohesive (i.e., free-flowing) particles, and a wealth of information has been learned about the behavior of cohesionless materials. With growing emphasis on controlling the structure of materials at increasingly small length-scales (even tending toward the nano-scale), understanding the effects of particle interactions---which tend to dominate at smaller length-scales---on processing operations has become more important than ever.; This project focuses on the effects of cohesion on mixing and segregation in simple, industrially-relevant, granular flows. In particular, the paradigm cases of a slowly rotated tumbler and the flow in a simple shear cell are examined. We take a novel approach to this problem, placing emphasis on microscopic (particle-level), discrete modeling so as to take as its staring point the well understood interaction laws governing cohesion (capillary, van der Waals, etc.), and build to the view of the macroscopic flow via experiment and Particle Dynamics Simulation. We develop and use discrete characterization tools of cohesive behavior in order to construct a simple theory regarding the mixing and segregation tendency of cohesive granular matter. This theory allows us to analytically determine a phase diagram, showing both mixed and segregated phases, and agrees both quantitatively and qualitatively with experiment. These results have implications for industrial mixing/separation processes as well as novel particle production methods (e.g., engineered agglomerates with precisely prescribed compositions).
机译:这项工作的目的是增进对粘性颗粒材料混合和分离的基本理解。内聚力可能来自多种来源:范德华力,静电力,液体桥连(毛细管)力。从制药到材料合成,这些力量可能在许多行业的细粉和/或湿粉加工中发挥重要作用;然而,尽管它很盛行,但是在文献中关于粘性材料加工的信息很少。取而代之的是,绝大多数工作都针对非粘性(即自由流动)粒子的研究,并且已经获得了有关无粘性材料的行为的大量信息。随着人们越来越重视以越来越小的长度尺度(甚至趋向于纳米尺度)控制材料的结构,了解粒子相互作用对加工操作的影响-在较小的长度尺度上占主导地位-变得比以往任何时候都重要。该项目的重点是内聚力对简单的,与工业相关的颗粒状流中的混合和分离的影响。特别地,研究了缓慢旋转的制杯机的范例情况和简单剪切室中的流动。我们针对此问题采取了一种新颖的方法,重点是微观(粒子级)离散模型,以便将支配内聚力(毛细管,范德华等)的众所周知的相互作用定律作为其出发点,并建立起通过实验和粒子动力学仿真可以看到宏观流动。我们开发并使用离散的内聚行为表征工具,以构建有关内聚颗粒的混合和偏析趋势的简单理论。该理论使我们能够分析确定相图,显示混合相和分离相,并在数量和质量上与实验相符。这些结果对工业混合/分离过程以及新颖的颗粒生产方法(例如,具有精确规定的组成的工程团聚物)具有影响。

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