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A MODIFIED PARTICLE SWARM OPTIMIZATION SCHEME AND ITS APPLICATION IN ELECTRONIC HEAT SINK DESIGN

机译:一种改进的粒子群优化方案及其在电子散热器设计中的应用

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Particle Swarm optimization (PSO) is a robust stochastic evolutionary computation technique which is based on the movement and intelligence of swarms. In this paper the PSO algorithm is modified to improve its performance in a class of design applications in heat transfer. The developed approach includes a new term called a chaotic acceleration factor (Ca) into the algorithm, which enhances its convergence rate and its accuracy. The modified PSO is empirically tested with well-known benchmark functions. Next it is applied in plate-fin design with the objective of dissipating the maximum heat generation from an electronic component by minimizing the entropy generation rate to obtain the highest heat transfer efficiency.
机译:粒子群优化(PSO)是一种坚固的随机进化计算技术,基于群体的运动和智能。在本文中,PSO算法被修改为提高其在传热中的一类设计应用中的性能。开发的方法包括称为混沌加速因子(CA)的新术语,该算法增强了其收敛速率及其精度。修改后的PSO经验与众所周知的基准功能进行了经验测试。接下来,它以板翅片设计应用,目的是通过最小化熵产生速率来消散来自电子元件的最大热量以获得最高传热效率。

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