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Fluids mixing in devices with connected-groove channels

机译:带有沟槽通道的设备中的流体混合

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A novel connected-groove micromixer (CGM) has been designed, fabricated, and investigated thoroughly. Connected grooves in this device, crossing multiple sides of the microchannel induced an intensely transverse field of fluids, and thus generating rapid mixing than patterned grooves on a single side alone. The fabrication of a CGM was facilitated to overcome the complication of fabricating the sidewall and bottom grooves in a channel simultaneously; a CGM hence became highly efficient and compact. We propose here CGM of two types-CGM-1 and CGM-2-and compare their mixing performance with a slanted-groove micromixer (SGM) numerically and experimentally for Re over a wide range (1-100). Numerical analysis demonstrated that a CGM provided intense transverse components in the field and great mixing efficiency; in particular, CGM-2 with co-rotating flows encompassing the mechanisms of cutting and blending of fluids had a mixing performance over 50% better than an SGM for Re = 1-100. To systematically analyze the mixing by experiments, mixing of slightly viscous fluids, highly viscous fluids, and bio-fluids were adopted, respectively. The mixing experiments of stightly viscous dye solutions on the basis of the color uniformity of mixture showed that mixing lengths of both CGM were smaller than that of SGM. Based on the mixing results of highly viscous fluids, CGM-1 with sidewall grooves had a shorter pitch of spiral flow and more helical turns than an SGM. With a confocal microscope we explored the mixing sections of fluorescent proteins (B-phycoerythrin, BPE; Allophycocyanin alpha subunit, ApcA) inside a micronfixer to confirm the numerical results. (C) 2007 Elsevier Ltd. All rights reserved.
机译:一种新型的连接槽式微混合器(CGM)已被设计,制造和彻底研究。与微通道的多个侧面交叉的该设备中连接的凹槽引起了强烈的横向流体场,因此比仅在单个面上的图案化凹槽产生了快速混合。 CGM的制造有助于克服同时制造通道中的侧壁和底部凹槽的复杂性。因此,CGM变得高效而紧凑。我们在这里提出两种CGM-CGM-1和CGM-2类型的CGM,并在较大范围(1-100)上对Re的数值和实验结果与斜槽微型混合器(SGM)进行比较。数值分析表明,CGM在现场具有较强的横向分量,混合效率高。尤其是,具有Re- 1-100的SGM的CGM-2具有同向流动的流体包含切削和混合的机制,其混合性能比SGM好50%以上。为了通过实验系统地分析混合,分别采用了微粘性流体,高粘性流体和生物流体的混合。根据混合物的颜色均匀性,对强粘性染料溶液进行混合实验,结果表明两种CGM的混合长度均小于SGM。根据高粘度流体的混合结果,与SGM相比,带有侧壁凹槽的CGM-1具有更短的螺旋流节距和更多的螺旋匝数。使用共聚焦显微镜,我们在微固定器中探索了荧光蛋白(B-藻红蛋白,BPE;藻蓝蛋白α亚基,ApcA)的混合部分,以证实数值结果。 (C)2007 Elsevier Ltd.保留所有权利。

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