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首页> 外文期刊>Journal of turbomachinery >Multidisciplinary Optimization of a Radial Compressor for Microgas Turbine Applications
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Multidisciplinary Optimization of a Radial Compressor for Microgas Turbine Applications

机译:微型燃气轮机径向压缩机的多学科优化

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摘要

A multidisciplinary optimization system and its application to the design of a small radial compressor impeller are presented. The method uses a genetic algorithm and artificial neural network to find a compromise between the conflicting demands of high efficiency and low centrifugal stresses in the blades. Concurrent analyses of the aero performance and stress predictions replace the traditional time consuming sequential design approach. The aerodynamic performance, predicted by a 3D Navier-Stokes solver, is maximized while limiting the mechanical stresses to a maximum value. The stresses are calculated by means of a finite element analysis, and controlled by modifying the blade camber, lean, and thickness at the hub. The results show that it is possible to obtain a significant reduction of the centrifugal stresses in the blades without penalizing the performance.
机译:提出了一种多学科优化系统及其在小型径向压缩机叶轮设计中的应用。该方法使用遗传算法和人工神经网络在叶片的高效率和低离心应力的矛盾需求之间找到折衷方案。航空性能和应力预测的并行分析取代了传统的耗时的顺序设计方法。由3D Navier-Stokes求解器预测的空气动力学性能得到了最大化,同时将机械应力限制为最大值。应力通过有限元分析来计算,并通过修改轮毂的叶片外倾角,倾斜角和厚度来控制。结果表明,可以在不损害性能的情况下显着减小叶片中的离心应力。

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