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Co-current crossflow microfiltration in a microchannel

机译:微通道中的并流错流微滤

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Steady state crossflow microfiltration (CMF) is an important and often necessary means of particle separation and concentration for both industrial and biomedical processes. The factors controlling the performance of CMF have been extensively reviewed. A major factor is transmembrane pressure (TMP). Because microchannels have small height, they tend to have high pressure gradients in the feed-flow direction. In the extreme, these gradients may even reverse the pressure across the membrane (inciting backflow). It is therefore desirable to compensate for the effect of feed-flow on the TMP, aiming at constant transmembrane pressure (cTMP) at a value which maximizes filtrate flux. This is especially critical during filtration of deformable particles (e.g. erythrocytes) through low intrinsic resistance membranes. Filtration flux is generally taken to be directly proportional to TMP, with pressure drop along the channel decreasing in the flow direction. A co-current flow of filtrate in a suitably designed filtrate collecting channel is shown to allow the TMP to remain constant and permit the sieving surface to perform optimally, permitting up to twice as much filtration over that of a naive configuration. Manipulation of the filtrate channel may be even more beneficial if it prevents backflow that might otherwise occur at the end of a sufficiently long channel. Experiments with erythrocyte suspensions, reported here, validate these concepts.
机译:稳态错流微滤(CMF)是工业和生物医学过程中颗粒分离和浓缩的重要且通常是必不可少的手段。控制CMF性能的因素已得到广泛审查。一个主要因素是跨膜压(TMP)。由于微通道的高度较小,因此它们在进料流方向上倾向于具有较高的压力梯度。在极端情况下,这些梯度甚至可能逆转跨膜的压力(引起回流)。因此,期望以恒定的跨膜压力(cTMP)为最大的滤液通量来补偿进料流对TMP的影响。在通过低内在阻力膜过滤可变形颗粒(例如红细胞)期间,这尤其重要。通常认为过滤通量与TMP成正比,沿着通道的压降在流动方向上减小。示出了在适当设计的滤液收集通道中的滤液的并流,以使TMP保持恒定并允许筛分表面达到最佳性能,从而允许其滤过的过滤量是纯净构造的两倍。如果可以防止在足够长的通道末端可能发生的回流,则对滤液通道的操作可能会更加有益。本文报道的红细胞悬液实验验证了这些概念。

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