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首页> 外文期刊>International Journal of Applied Mechanics and Engineering >OPTIMIZATION OF PIN FIN HEAT SINK BY APPLICATION OF CFD SIMULATIONS AND DOE METHODOLOGY WITH NEURAL NETWORK APPROXIMATION
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OPTIMIZATION OF PIN FIN HEAT SINK BY APPLICATION OF CFD SIMULATIONS AND DOE METHODOLOGY WITH NEURAL NETWORK APPROXIMATION

机译:应用CFD模拟和DOE方法结合神经网络优化销鳍散热片

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摘要

A design optimization of a staggered pin fin heat sink made of a thermally conductive polymer is presented. The influence of several design parameters like the pin fin height, the diameter, or the number of pins on thermal efficiency of the natural convection heat sink is studied. A limited number of representative heat sink designs were selected by application of the design of experiments (DOE) methodology and their thermal efficiency was evaluated by application of the antecedently validated and verified numerical model. The obtained results were utilized for the development of a response surface and a typical polynomial model was replaced with a neural network approximation. The particle swarm optimization (PSO) algorithm was applied for the neural network training providing very accurate characterization of the heat sink type under consideration. The quasi-complete search of defined solution domain was then performed and the different heat sink designs were compared by means of thermal performance metrics, i.e., array, space claim and mass based heat transfer coefficients. The computational fluid dynamics (CFD) calculations were repeated for the most effective heat sink designs.
机译:提出了一种由导热聚合物制成的交错式针翅散热片的设计优化。研究了几种设计参数(例如,针鳍高度,直径或针数)对自然对流散热器的热效率的影响。通过应用实验设计(DOE)方法选择了数量有限的代表性散热器设计,并通过应用先前经过验证和验证的数值模型来评估其热效率。将获得的结果用于响应曲面的开发,并将典型的多项式模型替换为神经网络逼近。粒子群优化(PSO)算法用于神经网络训练,可提供正在考虑中的散热器类型的非常准确的特性。然后对定义的解决方案域进行准完全搜索,并通过热性能指标(即阵列,空间要求和基于质量的传热系数)比较不同的散热器设计。对于最有效的散热器设计,重复了计算流体动力学(CFD)计算。

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