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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part D. Journal of Automobile Engineering >Surrogate model for aerodynamic shape optimization of a tractor-trailer in crosswinds
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Surrogate model for aerodynamic shape optimization of a tractor-trailer in crosswinds

机译:侧风中牵引车的空气动力学形状优化的替代模型

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摘要

A surrogate model-based aerodynamic shape optimization method applied to the wind deflector of a tractor-trailer is presented in this paper. The aerodynamic drag coefficient of the tractor-trailer with and without the wind deflector subjected to crosswinds is analyzed. The numerical results show that the wind deflector can decrease drag coefficient. Four parameters are used to describe the wind deflector geometry: width, length, height, and angle. A 30-level design of experiments study using the optimal Latin hypercube method was conducted to analyze the sensitivity of the design variables and build a database to set up the surrogate model. The surrogate model was constructed based on the Kriging interpolation technique. The fitting precision of the surrogate model was examined using computational fluid dynamics and certified using a surrogate model simulation. Finally, a multi-island genetic algorithm was used to optimize the shape of the wind deflector based on the surrogate model. The tolerance between the results of the computational fluid dynamics simulation and the surrogate model was only 0.92% when using the optimal design variables, and the aerodynamic drag coefficient decreased by 4.65% compared to the drag coefficient of the tractor-trailer installed with the original wind deflector. The effect of the optimal shape of the wind deflector was validated by computational fluid dynamics and wind tunnel experiment.
机译:提出了一种基于替代模型的空气动力学形状优化方法,该方法应用于牵引车的导流板。分析了带有或不带有导风板的牵引拖车的空气阻力系数。数值结果表明,导风板可以减小阻力系数。四个参数用于描述导风板的几何形状:宽度,长度,高度和角度。使用最佳拉丁超立方体方法进行了30层实验研究,以分析设计变量的敏感性并建立数据库以建立替代模型。代理模型是基于Kriging插值技术构建的。使用计算流体动力学检查替代模型的拟合精度,并使用替代模型仿真进行验证。最后,基于替代模型,使用多岛遗传算法优化导风板的形状。使用最佳设计变量时,计算流体动力学模拟结果与替代模型之间的公差仅为0.92%,与安装有原始风的牵引车的阻力系数相比,空气阻力系数降低了4.65%。导流板。通过计算流体动力学和风洞实验验证了导流板最佳形状的影响。

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