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Application of repulsive particle swarm optimization for inverse heat conduction problem - Parameter estimations of unknown plane heat source

机译:排斥粒子群优化在逆热传导问题中的应用 - 未知平面热源参数估计

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The major objective of the present study is to demonstrate the performance and efficiency of the Repulsive Particle Swarm Optimization (RPSO) method as an inverse analysis solver by extending its application to the inverse heat conduction problem. As the first outcome, an estimation of unknown parameters of a time-varying plane heat source in a one-dimensional inverse heat conduction problem was considered. The overall performance of the RPSO method was examined based on the effects of the forms of unknown heat source, the number of parameters, the measurement errors and the population sizes on the estimation accuracy. In addition, the final results were compared with those of the Levenberg-Marquardt Method (LMM), which is widely used for the inverse heat conduction problem, to investigate the advantages and disadvantages of the RPSO method.The present results prove that the RPSO method has more robust characteristics and yields rather confidential inverse estimations than the LMM for the inverse heat conduction problem although it requires more computational cost. (C) 2019 Elsevier Ltd. All rights reserved.
机译:本研究的主要目的是通过将其应用延伸到逆热传导问题,证明排斥粒子群优化优化(RPSO)方法作为逆分析求解器的性能和效率。作为第一结果,考虑了在一维逆热导热问题中的时变平面热源的未知参数的估计。基于未知热源形式,参数数量,测量误差和估计精度的人口尺寸的效果来检查RPSO方法的整体性能。此外,将最终结果与Levenberg-Marquardt方法(LMM)进行比较,该方法广泛用于逆热导热问题,研究RPSO方法的优点和缺点。目前的结果证明了RPSO方法具有比LMM更稳健的特性,而不是对逆热传导问题的LMM产生相当机密的逆估计,尽管它需要更多的计算成本。 (c)2019 Elsevier Ltd.保留所有权利。

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