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Constructal design of subcooled microchannel heat exchangers

机译:过冷微通道换热器的结构设计

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This paper presents geometric optimization and flow parameters modelling for subcooled flow boiling (two-phase flow). The objective of the paper was to minimize the thermal resistance of the microchannel heat exchanger subject to fixed volume constraints of heat sink and microchannel. The geometric and flow parameters were allowed to morph, according to the constructal design principles to obtain their optimized values. The flow was highly subcooled at inlet temperature of 25 degrees C using deionized water as the cooling fluid and aluminium as the heat sink material. Velocities between 0.1 and 4.5 m/s and heat fluxes between 100 and 1200 W/cm(2) (1 x 10(6) W/m(2) and 1.2 x 10(7)W/m(2)) were used in the modelling and optimization. Computational fluid dynamics code, ANSYS was used for both the simulations and the optimization of the configurations. The numerical code used for the simulations was validated by available experimental data in the literature and the agreement showed the capability of CFD (ANSYS) to predict accurately, subcooled flow boiling (two-phase flow) in rectangular microchannel heat exchangers for cooling of microelectronic devices. Comparisons were made between two-phase flow and singlephase flow by using their optimized geometric and flow parameters, and the results clearly demonstrated the superiority of two-phase flow regime in rectangular microchannels for removal of high heat fluxes at low Reynolds numbers. As the optimized Reynolds number increases, the minimized thermal resistance (peak temperature) decreases which is consistent with previous results obtained in the open literature. Results further show the aspect ratio, the optimized diameter and axial length of the microchannel as a function of the dimensionless pressure drop number (Bejan number). (C) 2019 Elsevier Ltd. All rights reserved.
机译:本文介绍了过冷沸腾(两相流)的几何优化和流动参数建模。本文的目的是在散热器和微通道的体积受到固定限制的情况下,使微通道热交换器的热阻最小。根据结构设计原则,允许几何参数和流量参数变形,以获取其优化值。使用去离子水作为冷却液和铝作为散热片材料,在入口温度为25摄氏度的条件下将气流高度过冷。使用0.1至4.5 m / s的速度以及100至1200 W / cm(2)(1 x 10(6)W / m(2)和1.2 x 10(7)W / m(2))的热通量在建模和优化中。计算流体动力学代码ANSYS用于仿真和配置优化。用于仿真的数字代码已通过文献中的可用实验数据验证,并且该协议表明CFD(ANSYS)能够准确预测矩形微通道热交换器中用于冷却微电子器件的过冷流沸腾(两相流) 。通过使用两相流和单相流的优化几何形状和流动参数进行比较,结果清楚地证明了矩形微通道中两相流在低雷诺数下去除高热通量的优越性。随着最佳雷诺数增加,最小化的热阻(峰值温度)降低,这与公开文献中先前的结果一致。结果进一步显示了微通道的长宽比,优化直径和轴向长度与无量纲压降数(Bejan数)的关系。 (C)2019 Elsevier Ltd.保留所有权利。

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