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Developing forced convection in converging-diverging microchannels

机译:在会聚-扩散微通道中发展强制对流

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In this paper, the effects of geometrical configuration on heat transfer performance and fluid flow of converging-diverging microchannels are studied numerically. Geometrical parameters are presented in nondimensionalized format, i.e., aspect ratio, S, waviness, λ, and expansion factor, γ. For five different aspect ratios and different levels of wall curvature, Nu and / are determined for three Re, i.e., 200, 400 and 600. Different mechanisms that affect the performance of the microchannel design are addressed and at each level of waviness, dominancy of each mechanism is discussed. Flow structures formed are studied and counter rotating vortices created in the trough region are found to have an adverse effect on heat transfer. At highly pronounced levels of wall curvature, chaotic advection is observed which results in higher heat transfer rates albeit with higher pressure penalties. Thus, converging-diverging design is introduced as a planar design with which chaotic advection may be achieved. A Performance Factor (PF) is proposed to capture heat transfer and pumping power characteristics of converging-diverging microchannels by comparing the wavy designs with their corresponding straight configurations. Based on the performance factor introduced, it is observed that the superiority of converging-diverging design shows itself at higher Re for which higher performance of up to 20% is observed.
机译:本文研究了几何构型对会聚-扩散微通道传热性能和流体流动的影响。几何参数以无尺寸格式表示,即长宽比S,波纹度λ和膨胀系数γ。对于五个不同的纵横比和不同的壁曲率水平,确定了三个Re(即200、400和600)的Nu和/。解决了影响微通道设计性能的不同机制,并且在每个波纹度下,讨论了每种机制。研究了形成的流动结构,发现在槽区域产生的反向旋涡对传热有不利影响。在高度显着的壁曲率水平上,观察到混沌对流,这导致较高的传热速率,尽管压力较高。因此,会聚-发散设计被引入为可以实现混沌对流的平面设计。提出了一种性能因子(PF),通过将波浪形设计与相应的直线形结构进行比较来捕获会聚-扩散微通道的传热和泵浦功率特性。基于引入的性能因素,可以观察到收敛-发散设计的优越性在更高的Re上显示出了自己的价值,为此,观察到高达20%的更高性能。

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