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Geometry parameters optimization for a microchannel heat sink with secondary flow channel

机译:具有二级流动通道的微通道散热器的几何参数优化

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Multi-objective optimization of geometry parameters of a microchannel heat sink with secondary flow channel was performed in this paper. The optimization objective is to minimize the thermal resistance and pumping power of the heat sink under constant water mass flow rate. The design variables include the ratio of secondary channel width to microchannel width a, the ratio of half pitch of secondary channel to microchannel width beta, and the tangent value of secondary channel angle gamma. The effects of single key design variable on the objective functions were numerically studied and the K-means clustering analysis was applied for the Pareto optimal solutions. The results show that the design variable alpha has the biggest influence on both thermal resistance and pump power. The pump power decreases by 13.7% and the thermal resistance increases by 17.2% as a increases from 1 to 2. The design variable beta has less influence on objective functions. In the studied gamma range, the pump power and the thermal resistance increase by 6.9% and 17.1%, respectively. There is an effective trade-off point between five cluster points of Pareto optimal solutions. In practical design, the structure parameters can be selected from five cluster points according to the pump power available to drive the fluid or required thermal resistance. The performance of the microchannel heat sink with secondary flow channel is significantly improved by optimization of structure parameters. Compared with the conventional smooth channel under the mass flow rate range studied in this paper, the thermal resistance and the pumping power of the optimized microchannel with secondary flow channel can be maximally reduced by 28.7% and 22.9%, respectively.
机译:本文对具有二次流动通道的微通道散热器的几何参数进行了多目标优化。优化目标是在恒定的水质量流量下最小化散热器的热阻和泵浦功率。设计变量包括次要通道宽度与微通道宽度a的比率,次要通道半间距与微通道宽度β的比率以及次要通道角gamma的切线值。数值研究了单个关键设计变量对目标函数的影响,并将K均值聚类分析应用于Pareto最优解。结果表明,设计变量α对热阻和泵浦功率的影响最大。从1到2,泵浦功率降低13.7%,热阻提高17.2%。设计变量β对目标函数的影响较小。在研究的伽玛范围内,泵浦功率和热阻分别增加6.9%和17.1%。在帕累托最优解的五个聚类点之间有一个有效的折衷点。在实际设计中,可以根据可用于驱动流体的泵浦功率或所需的热阻从五个群集点中选择结构参数。通过优化结构参数,显着提高了带有二级流动通道的微通道散热器的性能。与本文研究的质量流量范围内的常规平滑通道相比,优化后的带有辅助流动通道的微通道的热阻和泵浦功率分别最大降低了28.7%和22.9%。

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