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Hydrodynamical interactions between particles and liquid flows in biochemical applications

机译:生化应用中颗粒与液体流动之间的水动力相互作用

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The interactions between a turbulent flow field and discrete particles have numerous applications in biochemical engineering. On the one hand, flows have a strong influence on the particle motion, from which consequences for heat and mass transfer, mixing or even damage to particles are derived. On the other hand, the presence of the discontinuous (solid) phase is regarded as altering the turbulent field (two-way coupling). At present, no fully explained mechanism of this turbulence alteration is offered in the literature. However, the two-way coupling can no longer be considered when the particle concentration becomes sufficiently high. The dominant mechanism affecting the flow is then the particle-particle interaction. Until now, no clear definition of a demarcation between hydrodynamic (fluid-particle interaction) and viscous (particle-particle interaction) influences in liquid-solid or liquid-solid-gas systems has been given in the literature. In this paper we present first a description of the forces acting on a particle in a flow and the most relevant parameters linked to the response of a particle to turbulent stimulations. Some illustrations are given for common biochemical applications. The second part is concerned with the action of the particles on the turbulence, the main trends observed and their significance in such applications being focused on. It is also demonstrated here that the transition between the hydrodynamic and the viscous regimes is located between 20% and 30% in solid volume concentration.
机译:湍流场与离散颗粒之间的相互作用在生化工程中有许多应用。一方面,流动对粒子运动有很大的影响,从中可以得出热量和质量传递,混合甚至破坏粒子的后果。另一方面,不连续(固相)的存在被认为改变了湍流场(双向耦合)。目前,文献中没有提供这种湍流变化的充分解释的机制。但是,当颗粒浓度变得足够高时,将不再考虑双向耦合。于是影响流动的主要机理是颗粒-颗粒相互作用。迄今为止,在文献中还没有明确定义液动力或液固气系统中流体动力(流体-颗粒相互作用)和粘性(颗粒-颗粒相互作用)影响之间的界限。在本文中,我们首先描述作用在流体中的力以及与颗粒对湍流刺激的响应相关的最相关的参数。给出了一些常见生化应用的图解。第二部分涉及颗粒对湍流的作用,观察到的主要趋势及其在此类应用中的重要性。在此还证明,在流体动力学和粘性状态之间的过渡在固体体积浓度中位于20%至30%之间。

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