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Microdynamic modelling and analysis of the mixing and segregation of binary mixtures of particles in gas fluidization

机译:气体流化过程中颗粒二元混合物混合与分离的微观动力学建模与分析

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This paper presents a study of the mixing and segregation of particle mixtures in a gas-fluidized bed by means of a discrete particle simulation. Particle mixtures are composed of spherical particles with diameter 2 mm, for jetsam and I mm for flotsam. The particles are initially packed randomly in a rectangular bed and then fluidized by gas uniformly injected at the bottom of the bed. The gas injection velocity varies to cover fixed, partially and fully fluidized bed conditions, in order to establish a full picture about the effect of gas velocity. Segregation/mixing behaviour is analysed in terms of flow patterns, solid concentration profile and mixing kinetics. It is shown that segregation, as a transient process, is strongly affected by gas velocity. There is a gas velocity producing the maximum segregation for a given mixture. Below this velocity, segregation increases and above this velocity, segregation decreases with the increase of gas velocity. The time to reach a macroscopically stable state can be up to tens of seconds, decreasing with the increase of gas velocity. The mechanisms governing the segregation and mixing of particles are elucidated in terms of the interaction forces between particles and between particles and fluid. Particle-fluid interaction initiates fluidization and segregation. Particle-particle interaction, however, also plays an important role in governing the segregation of particles. The degree of segregation results from the complex dynamic balance of the two interactions either locally or globally. (c) 2006 Elsevier Ltd. All rights reserved.
机译:本文通过离散粒子模拟的方法,对气体流化床中粒子混合物的混合和分离进行了研究。颗粒混合物由直径为2毫米的球形颗粒组成(对于Jetsam而言)和1毫米(对于漂浮液)。颗粒最初随机堆积在矩形床中,然后通过均匀注入床底部的气体流化。气体注入速度会发生变化,以覆盖固定,部分和完全流化床的状况,以便全面了解气体速度的影响。根据流动模式,固体浓度分布和混合动力学分析了分离/混合行为。结果表明,作为一个过渡过程,偏析受到气体速度的强烈影响。对于给定的混合物,存在产生最大偏析的气体速度。低于该速度,偏析增加,而高于该速度,偏析随着气体速度的增加而减少。达到宏观稳定状态的时间可能长达数十秒,随着气体速度的增加而减少。根据颗粒之间以及颗粒与流体之间的相互作用力,阐明了控制颗粒分离和混合的机制。颗粒-流体相互作用引发流化和分离。但是,粒子间的相互作用在控制粒子的分离中也起着重要的作用。隔离程度是由于本地或全局两个交互的复杂动态平衡而产生的。 (c)2006 Elsevier Ltd.保留所有权利。

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