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Multi-objective optimization of geometrical parameters of corrugated-undulated heat transfer surfaces

机译:波纹-波纹状传热面几何参数的多目标优化

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摘要

To achieve a maximum heat transfer capability and a minimum pumping power for corrugated undulated (CU) heat transfer surfaces, a multi-objectives genetic algorithm was used to obtain the optimal values of the pitch and height of undulated plate (U-plate) and the height of the corrugated plate (C-plate) by using the Pareto optimal strategy. For this purpose, computational fluid dynamics (CFD) simulation, support vector machine (SVM) and the fast non-dominated sorting genetic algorithm were combined together and used for the optimization process. Three dimensional numerical simulations were performed to investigate the effect of geometrical parameters on the thermos-hydraulic performance of CU heat transfer surface. The maximum deviation for the Nusselt number and friction factor between the simulation and the published data were 8.81% and 13.1% respectively when the Reynolds number ranged from 1500 to 10,000. The flow and temperature profile in the CU passage were analyzed. Intensive secondary flows occurred in the C-plate channel and the U-plate channel due to the drag effect between the main flows in the two channels. And the effects of Reynolds number and structure parameters were studied. The change of U-plate height rather than that of U-plate pitch would have a dominant effect on the disturbance influence of U-plate. Besides, two SVM models were trained by the CFD results to predict the Nusselt number and friction factor of flow in CU passages with different geometrical and operational parameters. The comparison between the SVM predictions and the CFD results showed that the SVM models could predict the numerical data with a good accuracy. In addition, two evaluation criteria were proposed from perspectives of the manufacturers and the users, respectively. Finally, a set of optimized solutions were obtained. The optimal values of pumping power ratio and heat transfer area ratio between different CU passages and the standard one were in the range of 0.8-3.1 and 0.5-1.2, respectively. The manufacturers and the users can select the best design points according to their considerations. (C) 2016 Elsevier Ltd. All rights reserved.
机译:为了获得波纹状波纹状(CU)传热表面的最大传热能力和最小泵送功率,使用了多目标遗传算法来获得波纹状板(U形板)的节距和高度以及瓦楞板(C板)的高度通过使用帕累托最优策略。为此,将计算流体动力学(CFD)模拟,支持向量机(SVM)和快速非支配排序遗传算法结合在一起,并用于优化过程。进行了三维数值模拟,以研究几何参数对CU传热表面的热工-水力性能的影响。当雷诺数在1500至10,000之间时,模拟与已发布数据之间的努塞尔数和摩擦系数的最大偏差分别为8.81%和13.1%。分析了CU通道中的流量和温度曲线。由于两个通道中主流之间的拖曳效应,在C板通道和U板通道中产生了密集的次级流。并研究了雷诺数和结构参数的影响。 U板高度的变化而不是U板间距的变化将对U板的干扰影响起主要作用。此外,通过CFD结果训练了两个SVM模型,以预测具有不同几何和操作参数的CU通道中的Nusselt数和流动摩擦系数。 SVM预测和CFD结果之间的比较表明,SVM模型可以很好地预测数值数据。此外,分别从制造商和用户的角度提出了两个评估标准。最后,获得了一组优化的解决方案。不同CU通道与标准通道之间的最佳泵浦功率比和传热面积比的最佳值分别在0.8-3.1和0.5-1.2的范围内。制造商和用户可以根据自己的考虑选择最佳设计点。 (C)2016 Elsevier Ltd.保留所有权利。

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