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Three-Dimensional Design and Optimization of a Transonic Rotor in Axial Flow Compressors

机译:轴流压气机跨音速转子的三维设计与优化

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摘要

This paper presents a 3-D optimization of a moderately loaded transonic compressor rotor by means of a multiobjective optimization system. The latter makes use of a differential evolutionary algorithm in combination with an Artificial Neural Network and a 3D Navier-Stokes solver. Operating it on a cluster of 30 processors enabled the evaluation of the off-design performance and the exploration of a large design space composed of the camber line and spanwise distribution of sweep and chord length. Objectives were an increase of efficiency at unchanged stall margin by controlling the shock waves and off-design performance curve. First designs of single blade rows allowed a better understanding of the impact of the different design parameters. Forward sweep with unchanged camber improved the peak efficiency by only 0.3% with the same stall margin. Backward sweep with an optimized S shaped camber line improved the efficiency by 0.6% at unchanged stall margin. It is explained how the camber line control can introduce the same effect as forward sweep and compensate the expected negative effects of backward sweep. The best results (0.7% increase in efficiency and unchanged stall margin) have been obtained by a stage optimization that allows also a spanwise redistribution of the rotor flow and an increase of loading by extra flow turning. The latter compensates the loading shift induced by the backward sweep in order to reduce the inlet Mach number at the downstream stator hub.
机译:本文介绍了通过多目标优化系统对中等负荷跨音速压缩机转子进行的3-D优化。后者利用差分进化算法结合人工神经网络和3D Navier-Stokes求解器。在由30个处理器组成的集群上进行操作,可以评估非设计性能,并可以探索由弯度线以及扫掠和弦长的翼展方向分布组成的大型设计空间。目的是通过控制冲击波和偏离设计的性能曲线来提高失速裕度不变时的效率。单叶片排的最初设计允许更好地了解不同设计参数的影响。在相同的失速裕度的情况下,前倾和外倾角不变时,峰值效率仅提高了0.3%。在优化的S形外倾线的情况下,向后扫动在失速裕度不变的情况下将效率提高了0.6%。解释了外倾线控制如何可以引入与正向扫描相同的效果,并补偿向后扫描的预期负面影响。通过阶段优化获得了最佳结果(效率提高0.7%,失速裕度保持不变),该阶段优化还允许转子流量沿翼展方向重新分配,并通过额外的流量转向增加负载。后者补偿了由后掠引起的负载偏移,以减少下游定子毂处的进气马赫数。

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  • 来源
    《Journal of turbomachinery》 |2013年第3期|031009.1-031009.11|共11页
  • 作者单位

    Mitsubishi Heavy Industries, LTD,2-2-1 Shinhama Arai-Cho Takasago,Hyogo, 676-8686 Japan;

    Turbomachinery and Propulsion Department,von Karman Institute for Fluid Dynamics,Waterloose steenweg 72,1640 Sint-Genesius-Rode, Belgium;

    Turbomachinery and Propulsion Department,von Karman Institute for Fluid Dynamics,Waterloose steenweg 72,1640 Sint-Genesius-Rode, Belgium;

    Turbomachinery and Propulsion Department,von Karman Institute for Fluid Dynamics,Waterloose steenweg 72,1640 Sint-Genesius-Rode, Belgium;

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