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首页> 外文期刊>International Journal of Heat and Mass Transfer >Multi-objective shape optimization of a tube bundle in cross-flow
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Multi-objective shape optimization of a tube bundle in cross-flow

机译:横流管束的多目标形状优化

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Optimization of heat exchangers, as a consequence of their vital role in several industries and applications, has attracted a lot of interest in the last years, and in particular the necessity of improving their performances is well recognized. The coupling of optimization techniques with Computational Fluid Dynamics(CFD)has demonstrated to be a valid methodology for easily explore this work, a CFD-based shape optimization of a tube bundle in crossflow is presented, as a natural extension of the work of Hilbert et al.(2006)[1 ]. In this study, also the flow inside the tubes has been computed, and the coupled simulation of the external flow and thermal field is performed also on a periodic domain. Two genetic algorithms have been tested and compared, NSGA-Ⅱ and FMOCA-Ⅱ: the latter makes an internal use of surrogate models to speed up and improve the optimization process, and proved to be a promising algorithm. The results demonstrate how the search for efficient geometric configurations should also take into account the internal flow field.
机译:近年来,由于热交换器在多个行业和应用中的重要作用,其优化已引起了人们的极大兴趣,尤其是提高其性能的必要性已广为人知。优化技术与计算流体动力学(CFD)的结合已被证明是轻松进行此项工作的有效方法,提出了基于CFD的错流管束形状优化方法,这是希尔伯特(Hilbert)等人的工作的自然延伸。 (2006)[1]。在这项研究中,还计算了管内的流动,并且还在周期性域上进行了外部流动和热场的耦合模拟。测试并比较了两种遗传算法:NSGA-Ⅱ和FMOCA-Ⅱ:后者内部使用了替代模型来加速和改善优化过程,并被证明是有前途的算法。结果表明,寻找有效的几何构型还应如何考虑内部流场。

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