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新型液滴发生器提高了混合效率并减小了液滴尺寸。

Enhanced mixing efficiency and reduced droplet size with novel droplet generators.

作者信息

Kheirkhah Barzoki Ali

机构信息

Department of Mechanical Engineering, Sharif University of Technology, Tehran, Iran.

出版信息

Sci Rep. 2024 Feb 27;14(1):4711. doi: 10.1038/s41598-024-55514-7.

Abstract

Nowadays, droplet microfluidics has become widely utilized for high-throughput assays. Efficient mixing is crucial for initiating biochemical reactions in many applications. Rapid mixing during droplet formation eliminates the need for incorporating micromixers, which can complicate the chip design. Furthermore, immediate mixing of substances upon contact can significantly improve the consistency of chemical reactions and resulting products. This study introduces three innovative designs for droplet generators that achieve efficient mixing and produce small droplets. The T-cross and cross-T geometries combine cross and T junction mixing mechanisms, resulting in improved mixing efficiency. Numerical simulations were conducted to compare these novel geometries with traditional T and cross junctions in terms of mixing index, droplet diameter, and eccentricity. The cross-T geometry exhibited the highest mixing index and produced the smallest droplets. For the flow rate ratio of 0.5, this geometry offered a 10% increase in the mixing index and a decrease in the droplet diameter by 10% compared to the T junction. While the T junction has the best mixing efficiency among traditional droplet generators, it produces larger droplets, which can increase the risk of contamination due to contact with the microchannel walls. Therefore, the cross-T geometry is highly desirable in most applications due to its production of considerably smaller droplets. The asymmetric cross junction offered a 8% increase in mixing index and around 2% decrease in droplet diameter compared to the conventional cross junction in flow rate ratio of 0.5. All novel geometries demonstrated comparable mixing efficiency to the T junction. The cross junction exhibited the lowest mixing efficiency and produced larger droplets compared to the cross-T geometry (around 1%). Thus, the novel geometries, particularly the cross-T geometry, are a favorable choice for applications where both high mixing efficiency and small droplet sizes are important.

摘要

如今,微滴微流控技术已被广泛应用于高通量分析。在许多应用中,高效混合对于启动生化反应至关重要。在微滴形成过程中进行快速混合,无需加入微混合器,从而避免了芯片设计的复杂化。此外,物质接触时立即混合可显著提高化学反应及产物的一致性。本研究介绍了三种用于微滴发生器的创新设计,这些设计可实现高效混合并产生小尺寸微滴。T型交叉和交叉-T型几何结构结合了交叉和T型结混合机制,提高了混合效率。进行了数值模拟,以比较这些新型几何结构与传统T型和交叉型结在混合指数、微滴直径和偏心率方面的差异。交叉-T型几何结构表现出最高的混合指数,并产生最小的微滴。对于流速比为0.5的情况,与T型结相比,这种几何结构的混合指数提高了10%,微滴直径减小了10%。虽然T型结在传统微滴发生器中具有最佳的混合效率,但它产生的微滴较大,这可能会增加与微通道壁接触导致污染的风险。因此,交叉-T型几何结构因其产生的微滴尺寸小得多,在大多数应用中非常理想。与传统交叉型结相比,在流速比为0.5时,非对称交叉型结的混合指数提高了8%,微滴直径减小了约2%。所有新型几何结构的混合效率与T型结相当。与交叉-T型几何结构相比,交叉型结的混合效率最低,产生的微滴较大(约1%)。因此,这些新型几何结构,特别是交叉-T型几何结构,对于高混合效率和小微滴尺寸都很重要的应用来说是一个不错的选择。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9670/10897375/ff7a18c1f422/41598_2024_55514_Fig1_HTML.jpg

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