斐波那契植物轴微型针翅散热器的多目标优化

IF 2.8 Q2 THERMODYNAMICS Heat Transfer Pub Date : 2024-05-21 DOI:10.1002/htj.23083
Ayechew Shemelash, Bimrew Tamrat, Muluken Temesgen, Rajendiran Gopal, Belachew Desalegn, Hailemariam Mulugeta, Henok G/yohannes Solomon
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引用次数: 0

摘要

微处理器等电子设备的热管理仍然面临着巨大的技术挑战。为了提高集成电路的散热性能,我们开发了一种新的圆形微鳍片散热器的斐波那契(Fibonacci)植物轴向设计。为了最大限度地降低芯片温度和泵功率,采用了多目标优化技术。利用全因子设计实验对设计参数(如植轴系数、鳍片直径和鳍片高度)对响应参数的影响进行了数值研究。人工神经网络与 MO-Jaya 相结合,得出了最佳折衷方案的帕累托前沿。最佳设计变量集为高度 300 μm、直径 122.6 μm、植物轴向系数 130 μm,冷却剂入口速度为 2.263 m/s。然后对选定的最佳设计进行了数值研究,并将结果与 MO-Jaya 算法预测的结果进行了比较。最终确认的响应变量为最高温度 51.6°C 和泵功率 0.191 W。结果表明,微针鳍散热器的斐波纳契植物轴结构具有更好的散热性能。
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Multi-objective optimization of a Fibonacci phyllotaxis micro pin-fin heat sink

There are still significant technical challenges associated with thermal management of electronic devices such as microprocessors. To improve heat dissipation performance of integrated circuits, a new Fibonacci phyllotaxis design of circular micropin fin heat sinks has been developed. To minimize both chip temperature and pumping power, a multi-objective optimization technique was employed. The effect of design parameters such as phyllotaxis coefficient, pin fin diameter, and pin fin height on response parameters was numerically investigated using the full factorial design of the experiment. Artificial neural network was coupled with MO-Jaya, to arrive at a Pareto frontier of optimal compromise solutions. The optimal set of design variables were found to be a height of 300 μm, a diameter of 122.6 μm, and a phyllotaxis coefficient of 130 μm with an inlet velocity of coolant 2.263 m/s. The selected optimum design was then investigated numerically, and the outcomes were compared to those predicted by the MO-Jaya algorithm. The final confirmed response variables were a maximum temperature of 51.6°C and a pumping power of 0.191 W. The results show that the Fibonacci phyllotaxis structure of the micro pin fin heat sink has better heat-dissipating performance.

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来源期刊
Heat Transfer
Heat Transfer THERMODYNAMICS-
CiteScore
6.30
自引率
19.40%
发文量
342
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