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首页> 外文期刊>Journal of Wind Engineering and Industrial Aerodynamics: The Journal of the International Association for Wind Engineering >Genetically aerodynamic optimization of the nose shape of a high-speed train entering a tunnel
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Genetically aerodynamic optimization of the nose shape of a high-speed train entering a tunnel

机译:进入隧道的高速列车机头形状的遗传空气动力学优化

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The optimization of the nose shape of a high-speed train entering a tunnel has been performed using genetic algorithms (GA). This optimization method requires the parameterization of each optimal candidate as a design vector. The geometrical parameterization of the nose has been defined using three design variables that include the most characteristic geometrical factors affecting the compression wave generated at the entry of the train and the aerodynamic drag of the train. A large set of threedimensional, turbulent, compressible, unsteady simulations of realistic train models have been done, and this information has been used to fit a metamodel. The metamodel is used by the GA to evaluate each optimal candidate in a more efficient way. The optimal designs that minimize the maximum pressure gradient and the aerodynamic drag are in good agreement with the literature. To complete this single-objective optimization, a multi-objective optimization has been developed, and a Pareto front has been obtained. The use of metamodels has permitted to analyze the influence of each design variable.
机译:使用遗传算法(GA)对进入隧道的高速列车的机头形状进行了优化。这种优化方法要求将每个最佳候选参数化为设计矢量。机头的几何参数化已使用三个设计变量进行了定义,这些变量包括影响火车进入时产生的压缩波和火车的空气阻力的最具特征性的几何因素。已经完成了对现实火车模型的大量三维,湍流,可压缩,不稳定的模拟,并且此信息已用于拟合元模型。 GA使用元模型以更有效的方式评估每个最佳候选人。最小化最大压力梯度和空气阻力的最佳设计与文献一致。为了完成此单目标优化,已开发了多目标优化,并获得了帕累托前沿。使用元模型可以分析每个设计变量的影响。

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