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EXPERIMENTAL INVESTIGATION OF INERTIAL MIXING IN DROPLETS

机译:滴剂中惰性混合的实验研究

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Achieving the fast mixing requirements posed by the chemical, biological, and life science community for confined microchannel flows remains an engineering challenge. The viscous and surface tension forces that dominate conventional micro-flows undermine fast, efficient mixing. By increasing the collisional velocity of reagent droplets, inertia can be exploited to increase mixing rates. This paper experimentally investigates inertial droplet mixing in micro flows. A high speed, gaseous flow is used to detach, transport, and collide droplets of nanoliter-size volumes in standard T and Y-junction microchannel geometries. Mixing rates are quantified using differential fluorescent optical diagnostics. Measured droplet mixing times are compared to the characteristic time scales for mass and viscous diffusion and bulk convection. Results show that mixing times are decreased as the droplet inertia is increased, indicating the potential benefit of inertia-driven mixing.
机译:实现化学,生物学和生命科学界对受限的微通道流动提出的快速混合要求仍然是工程上的挑战。主导传统微流的粘性和表面张力破坏了快速,有效的混合。通过增加试剂液滴的碰撞速度,可以利用惯性来增加混合速率。本文通过实验研究了微流中的惯性液滴混合。高速气流用于分离,运输和碰撞标准T型和Y型接头微通道几何结构中纳升大小的液滴。使用差分荧光光学诊断仪定量混合速率。将测得的液滴混合时间与质量和粘滞扩散以及整体对流的特征时间标度进行比较。结果表明,随着液滴惯性的增加,混合时间减少,表明惯性驱动混合的潜在好处。

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