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Modeling of fouling in cross-flow microfiltration of suspensions

机译:悬浮杂交跨流微滤污垢的建模

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摘要

Cross-flow filtration of fine suspensions through microsieves occurs in microprocessing. The interaction of particles with surfaces in microenvironments has been extensively studied, but predominantly in monolayers and not with an eye to microfiltration. Here, we introduce a microfiltration model that pertains to particles that might be seen as fine in a macroscopic environment, but are large enough to intrude significantly into the shear layer of a microchannel. Thus, particle accumulation upon the sieve couples the steady-state filtrate flux and the suspension flow through the microchannel that feeds the sieve. We envision and create a stable, stationary multilayer of particles whose thickness is shear-limited and we identify and verify the structure and parameters that limit steady filtration in this environment. At first, a packed bed of particles forms, growing into and regulated by the micro channel's shear flow. A critical shear stress is shown to determine the thickness of the bed, seen as a stationary and stable multilayer of particles through which filtration may occur. As the bed thickens, at the expense of channel area for suspension flow, surface shear stress increases until no further particle adherence is possible. We built a simple example using hard noninteracting polymer microspheres and conducted cross-flow filtration experiments over Aquamarijn (TM) microsieves (uniform pore size of 0.8 mu m). We observed a steady cake-layer thickness and because of the simple geometry afforded by uniform spheres, we could approximate the force balance, cake resistance, and filtration rate from first principles. The good fit of our data to the proposed mechanism lays a firm basis for the semiquantitative analysis of the behavior of more complex suspensions. (c) 2018 American Institute of Chemical Engineers AIChE J, 65: 207-213, 2019
机译:微处理中,通过微处理发生微处理的交叉流过滤。已经广泛地研究了微环境与微环境中表面的颗粒的相互作用,但主要在单层中而不是用微滤的眼睛。这里,我们引入了一种微滤模型,其涉及在宏观环境中可能被视为精细的微滤模型,但是足够大以显着地侵入微通道的剪切层。因此,筛子上的颗粒积聚将稳态滤液通量耦合,悬浮液流通过饲喂筛的微通道。我们设想并创建一个稳定的静止多层的颗粒,其厚度是剪切限制,我们识别并验证限制本环境中稳定过滤的结构和参数。首先,通过微通道的剪切流量,生长成和调节颗粒的填充床。示出了临界剪切应力以确定床的厚度,视为可能发生过滤的固定和稳定的颗粒多层颗粒。由于床变稠,以悬架流动的沟道区域的牺牲区,表面剪切应力增加,直到不进一步的颗粒粘附。我们建立了一个简单的例子,使用硬度非交互聚合物微球,并在Aquamarijn(TM)微观上进行交叉流过滤实验(均匀的孔径为0.8μm)。我们观察到稳定的蛋糕层厚度,并且由于均匀球体所提供的简单几何形状,我们可以近似于第一原理的力平衡,滤饼和过滤速率。我们对拟议机制的良好拟合符合对更复杂悬浮液行为的半定量分析的坚实基础。 (c)2018美国化学工程研究所Aiche J,65:207-213,2019

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