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Multi-Objective Optimization of a Fin with two-Dimensional Heat Transfer Using NSGA-II and ANN

机译:基于NSGA-II和ANN的二维热传递鳍片多目标优化

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Two-dimensional heat transfer in a fin was modeled with acceptable accuracy and optimized. Bezier curve was used to estimate the fin geometry. The finite volume method coupled with the artificial neural network was developed to predict the temperature distribution through the fin with -1.5% to +1% and ± 0.5% accuracy for fin efficiency and rate of heat transfer, respectively. Locations of four control points in the Bezier curve were considered as design variables. Then, fast and elitist non-dominated sorting genetic algorithm (NSGA-II) was applied to find the maximum fin efficiency and the rate of heat transfer as two objective functions. The results of optimal designs were a set of multiple optimum solutions, called ‘Pareto optimal solutions’. The maximum 72 percent for fin efficiency was found with 739W as its rate of heat transfer while the maximum rate of heat transfer was 962.3 W with 57 percent efficiency.In addition, the optimum results of two-dimensional heat transfer were compared with one-dimensional and the average 14.7 percent decreases in fin efficiency and the rate of heat transfer was found that show the deficiency of the one-dimension modeling. In the second case study, the Pareto front was derived for the rate of heat transfer and fin surface area as two objective functions. It was observed that the results of optimum fin configuration in the case of fin efficiency as objective function are the same with the results of fin surface area as objective function.
机译:翅片中的二维传热模型以可接受的精度建模并进行了优化。贝塞尔曲线用于估计鳍的几何形状。开发了与人工神经网络相结合的有限体积方法,以预测翅片的温度分布,翅片效率和传热率分别为-1.5%至+ 1%和±0.5%精度。贝塞尔曲线中的四个控制点的位置被视为设计变量。然后,应用快速,精英的非支配排序遗传算法(NSGA-II)来找到最大的翅片效率和热传递率作为两个目标函数。最佳设计的结果是一组多个最佳解决方案,称为“帕累托最佳解决方案”。翅片的最大传热率为72%,传热率为739W,最大传热率为962.3W,传热率为57%。此外,将二维传热与一维传热的最佳结果进行了比较翅片效率平均降低了14.7%,传热速率也显示出一维模型的缺陷。在第二个案例研究中,推导了帕累托前沿,将传热速率和翅片表面积作为两个目标函数。观察到,以鳍片效率为目标函数的情况下,最佳鳍片构造的结果与以鳍片表面积为目标函数的结果相同。

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