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首页> 外文期刊>Journal of Colloid and Interface Science >Separation of charged colloids by a combination of pulsating lateral electric fields and poiseuille flow in a 2D channel
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Separation of charged colloids by a combination of pulsating lateral electric fields and poiseuille flow in a 2D channel

机译:通过在2D通道中通过脉动侧向电场和Poiseuille流的组合分离带电胶体

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Separation of colloidal particles of different sizes is becoming increasingly important due to rapid developments in the area of proteomics, genetic engineering, drug discovery, etc. In particular, there is a need to accomplish these separations on a microscale in 'lab-on-a-chip' devices. In this paper, we propose a new method for accomplishing separation of charged colloids of different sizes in a microchannel. This method involves a combination of pulses of lateral electric fields and Poiseuille flow in the axial direction. We develop a model for this separation technique and obtain closed form solutions for the mean velocity and the dispersion coefficient for a pulse of molecules introduced into the channel. These expressions are then utilized to determine the channel length and the separation time. For reasonable value of design constants, the proposed technique can separate molecules of different sizes that have diffusivities of 10(-10) and 0.5 x 10(-10) m(2)/s in 15.7 s in a 3.7 mm long channel. The length and the time increase to 5.45 cm and 231 s if the ratio of the diffusivities is reduced from 2 to 1.2, i.e., the latter diffusivity is increased to 0.835 x 10(-10) m(2)/s, while keeping all the other parameters the same. If the diffusivities are about 10(-9) m(2)/s, the length and the time for separation are 1 cm and 17.5 s for D-1/D-2 = 2, and 16 cm and 269 s for D-1/D-2 = 1.2. (C) 2004 Elsevier Inc. All rights reserved.
机译:由于蛋白质组学,基因工程,药物发现等领域的快速发展,不同大小的胶体颗粒的分离变得越来越重要。特别是,需要在实验室中以微观规模完成这些分离芯片设备。在本文中,我们提出了一种在微通道中完成不同大小的带电胶体分离的新方法。该方法涉及在轴向方向上结合横向电场脉冲和泊瓦电流。我们为这种分离技术开发了一个模型,并获得了引入通道的分子脉冲的平均速度和弥散系数的闭式解。这些表达式然后用于确定通道长度和分离时间。为了获得合理的设计常数,建议的技术可以在3.7 mm长的通道中分离15.7 s内具有10(-10)和0.5 x 10(-10)m(2)/ s扩散率的不同大小的分子。如果将扩散率从2降低到1.2,即将后者的扩散率增加到0.835 x 10(-10)m(2)/ s,则长度和时间将增加到5.45 cm和231 s。其他参数相同。如果扩散率约为10(-9)m(2)/ s,则分离的长度和时间对于D-1 / D-2 = 2分别为1 cm和17.5 s,对于D- / D-2 = 16 cm和269 s 1 / D-2 = 1.2。 (C)2004 Elsevier Inc.保留所有权利。

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