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Population-based optimization for heat sink design in electronics cooling applications

机译:基于总体的电子冷却应用中的散热器设计优化

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Smooth and scale-roughened plate-fin heat sinks for electronic device cooling are considered. Developments in modeling momentum and heat transport in heterogeneous and hierarchical devices with full conjugate effects included provide the ability to rapidly obtain nonlocal descriptions of the flow and temperature fields in such devices. Such modeling, based on Volume Averaging Theory (VAT), directly incorporates the device morphology into the governing field equations, allowing geometric optimization to be based on theoretically correct governing equations that are quickly solved and rigorously derived from the fundamental Navier-Stokes and solid and fluid thermal energy equations. A number of optimization methods for heat sink designers who model heat sinks with VAT can be envisioned due to VAT's singular ability to rapidly - compared to Direct Numerical Simulations (DNS) - provide detailed solutions. Design of Experiment (DOE) has been used in the past, and more recently Genetic Algorithms (GAs) and Particle Swarm Optimizers (PSOs) have appeared attractive for multi-parameter thermal-fluid device optimization. In this study, optimization employing a GA and a PSO on two types of heat sinks modeled with VAT is carried out and the capabilities of the two optimization methods are discussed. It is found that the GA and PSO methods are both effective in locating the heat sinks' optimum configurations and that the computational time they take to do so is on the order of just several minutes when using a typical laptop computer. This study demonstrates the usefulness of population-based optimization methods in optimizing transport phenomena in heterogeneous and hierarchical heat transfer devices when VAT-based mo deling is emplo yed.
机译:考虑了用于电子设备冷却的平滑且粗糙的板翅式散热器。在具有完全共轭效应的异构和分层设备中对动量和热传递进行建模的开发包括提供了快速获得此类设备中流场和温度场的非局部描述的能力。这种基于体积平均理论(VAT)的建模将设备形态直接整合到控制场方程中,从而允许基于理论上正确的控制方程进行几何优化,这些方程可快速求解并严格从基本的Navier-Stokes,固体和流体热能方程。与直接数值模拟(DNS)相比,增值税具有独特的快速提供快速解决方案的能力,因此可以设想为采用增值税建模散热器的散热器设计人员采用的多种优化方法。过去一直使用实验设计(DOE),最近,遗传算法(GA)和粒子群优化器(PSO)对于多参数热流体设备的优化显得很有吸引力。在这项研究中,利用GA和PSO对采用VAT建模的两种类型的散热器进行了优化,并讨论了两种优化方法的功能。结果发现,GA和PSO方法都可以有效地定位散热器的最佳配置,并且使用典型的便携式计算机时,它们花费的计算时间仅为几分钟。这项研究表明,当采用基于VAT的模型时,基于种群的优化方法在优化异质和分层传热设备中的传输现象方面很有用。

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