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Three dimensional features of convective heat transfer in droplet-based microchannel heat sinks

机译:基于液滴的微通道散热器中对流传热的三维特征

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摘要

Convective heat transfer in droplet-based microchannel heat sinks can be enhanced by the recirculating vortices due to the presence of interfaces. In rectangular microchannels, the three dimensional structures of the vortices and the 'gutters' (i.e., the space between the curved droplet interface and the corner of the microchannel) can significantly affect the heat transfer process. Numerical simulations of the heat transfer process are performed to study the three dimensional features in droplet-based microchannel heat sinks. The finite volume method and the level set method are employed to simulate the flow dynamics, the evolution of the interface, and the heat transfer. The results show that the 'gutters' can hinder the heat transfer process because of its parallel flow, whereas the recirculating flow in droplets and in slug regions between successive droplets can enhance the heat transfer by advecting hot fluid towards the center of the droplets/slugs and advecting fresh fluid towards the wall of the channel. The effects of the length of droplets, the aspect ratio of the channel cross sections, and the Peclet number are analyzed.
机译:由于界面的存在,通过循环涡流可以增强基于液滴的微通道散热器中的对流传热。在矩形微通道中,涡旋和“沟槽”的三维结构(即,弯曲的液滴界面和微通道角之间的空间)会显着影响传热过程。进行了传热过程的数值模拟,以研究基于液滴的微通道散热器的三维特征。采用有限体积法和水平集法来模拟流动动力学,界面演变和传热。结果表明,“沟槽”由于其平行流动而会阻碍传热过程,而连续液滴之间的液滴中和段区域中的再循环流可通过使热流体朝着液滴/段的中心流动而增强传热。并向通道壁输送新鲜流体。分析了液滴长度,通道横截面的长宽比和Peclet数的影响。

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