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Shape optimization of a fan-shaped hole to enhance film-cooling effectiveness

机译:扇形孔的形状优化可增强薄膜冷却效果

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A fan-shaped hole for film cooling has been studied to find the effect of geometric variations on the cooling performance and optimized to enhance film-cooling effectiveness using three-dimensional Reynolds-averaged Navier-Stokes analysis and surrogate approximation methods. The computational results for film-cooling effectiveness using SST turbulence model have been validated in comparison with the experimental data. The injection angle, lateral expansion angle, and ratio of length-to-diameter of the hole are chosen as the design variables, and the effects of these variables on the cooling performance are evaluated. To optimize a fan-shaped hole, the spatially-averaged film-cooling effectiveness is considered as the objective function, which is to be maximized. Latin hypercube sampling is used to determine the training points as a means of the design of experiment. A weighted-average surrogate model is used to approximate the data generated by numerical analysis at the design points. And, sequential quadratic programming is used to search for the optimal point from the constructed surrogate. The results of the optimization show that the film-cooling effectiveness has been successfully improved through optimization, when compared with the reference geometry.
机译:研究了用于薄膜冷却的扇形孔,以发现几何变化对冷却性能的影响,并使用三维雷诺平均Navier-Stokes分析和替代近似方法对其进行了优化,以增强薄膜冷却效果。与实验数据比较,已经验证了使用SST湍流模型进行的薄膜冷却效果的计算结果。选择喷射角,横向膨胀角和孔的长径比作为设计变量,并评估这些变量对冷却性能的影响。为了优化扇形孔,将空间平均的薄膜冷却效率视为目标函数,并将其最大化。拉丁超立方体采样用于确定训练点,作为实验设计的一种手段。加权平均替代模型用于在设计点对通过数值分析生成的数据进行近似。并且,顺序二次编程用于从构造的代理中搜索最佳点。优化结果表明,与参考几何形状相比,通过优化成功地改善了薄膜冷却效果。

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