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螺旋微流控横截面效应混合性能的数值与实验研究

Numerical and Experimental Study of Cross-Sectional Effects on the Mixing Performance of the Spiral Microfluidics.

作者信息

Rouhi Omid, Razavi Bazaz Sajad, Niazmand Hamid, Mirakhorli Fateme, Mas-Hafi Sima, A Amiri Hoseyn, Miansari Morteza, Ebrahimi Warkiani Majid

机构信息

School of Biomedical Engineering, University of Technology Sydney, Sydney, NSW 2007, Australia.

Department of Mechanical Engineering, Ferdowsi University of Mashhad, Mashhad 91779-48974, Iran.

出版信息

Micromachines (Basel). 2021 Nov 29;12(12):1470. doi: 10.3390/mi12121470.

Abstract

Mixing at the microscale is of great importance for various applications ranging from biological and chemical synthesis to drug delivery. Among the numerous types of micromixers that have been developed, planar passive spiral micromixers have gained considerable interest due to their ease of fabrication and integration into complex miniaturized systems. However, less attention has been paid to non-planar spiral micromixers with various cross-sections and the effects of these cross-sections on the total performance of the micromixer. Here, mixing performance in a spiral micromixer with different channel cross-sections is evaluated experimentally and numerically in the range of 0.001 to 50. The accuracy of the 3D-finite element model was first verified at different flow rates by tracking the mixing index across the loops, which were directly proportional to the spiral radius and were hence also proportional to the Dean flow. It is shown that higher flow rates induce stronger vortices compared to lower flow rates; thus, fewer loops are required for efficient mixing. The numerical study revealed that a large-angle outward trapezoidal cross-section provides the highest mixing performance, reaching efficiencies of up to 95%. Moreover, the velocity/vorticity along the channel length was analyzed and discussed to evaluate channel mixing performance. A relatively low pressure drop (<130 kPa) makes these passive spiral micromixers ideal candidates for various lab-on-chip applications.

摘要

从生物和化学合成到药物递送等各种应用中,微尺度混合都非常重要。在已开发的众多类型的微混合器中,平面无源螺旋微混合器因其易于制造以及能够集成到复杂的小型化系统中而备受关注。然而,对于具有各种横截面的非平面螺旋微混合器及其横截面对微混合器整体性能的影响,人们关注较少。在此,对具有不同通道横截面的螺旋微混合器在0.001至50范围内的混合性能进行了实验和数值评估。通过跟踪各环路的混合指数,首先在不同流速下验证了三维有限元模型的准确性,该混合指数与螺旋半径成正比,因此也与迪恩流成正比。结果表明,与较低流速相比,较高流速会产生更强的涡流;因此,高效混合所需的环路更少。数值研究表明,大角度向外梯形横截面具有最高的混合性能,效率可达95%。此外,还对沿通道长度的速度/涡度进行了分析和讨论,以评估通道混合性能。相对较低的压降(<130 kPa)使这些无源螺旋微混合器成为各种芯片实验室应用的理想选择。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bdae/8705925/7388839d4849/micromachines-12-01470-g001.jpg

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