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Design Methodology for Supersonic Radial Vanes Operating in Nonideal Flow Conditions

机译:非理想流动条件下超音速径向叶片的设计方法

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The stator vanes of high-temperature organic Rankine cycle (ORC) radial-inflow turbines (RIT) operate under severe expansion ratios and the associated fluid-dynamic losses account for nearly two-thirds of the total losses generated within the blading passages. The efficiency of the machine can strongly benefit from specialized high-fidelity design methods able to provide shapes attenuating shock wave formation, consequently reducing entropy generation across the shock-wave and mitigating shock-wave boundary layer interaction. Shape optimization is certainly a viable option to deal with supersonic ORC stator design, but it is computationally expensive. In this work, a robust method to approach the problem at reduced computational cost is documented. The method consists of a procedure encompassing the method of characteristics (MoC), extended to nonideal fluid flow, for profiling the diverging part of the nozzle. The subsonic section and semibladed suction side are retrieved using a simple conformal geometrical transformation. The method is applied to design a supersonic ORC stator working with Toluene vapor, for which two blade shapes were already available. The comparison of fluid-dynamic performance clearly indicates that the MoC-Based method is able to provide the best results with the lowest computational effort, and is therefore suitable to be used in a systematic manner for drawing general design guidelines.
机译:高温有机朗肯循环(ORC)径向流入式涡轮机(RIT)的定子叶片在较大的膨胀比下运行,并且相关的流体动力损失几乎占叶片通道内产生的总损失的三分之二。机器的效率可以从专门的高保真设计方法中受益匪浅,该设计方法能够提供减弱冲击波形成的形状,从而减少整个冲击波的熵产生并减轻冲击波边界层的相互作用。形状优化无疑是处理超音速ORC定子设计的可行选择,但计算量大。在这项工作中,记录了一种以降低的计算成本解决问题的可靠方法。该方法包括一个过程,该过程包含扩展到非理想流体流动的特性方法(MoC),用于对喷嘴的发散部分进行轮廓分析。亚音速截面和半叶片吸力侧使用简单的共形几何变换检索。该方法用于设计使用甲苯蒸气的超音速ORC定子,该定子已经有两种叶片形状。流体动力性能的比较清楚地表明,基于MoC的方法能够以最少的计算量提供最佳结果,因此适合以系统的方式用于绘制一般设计准则。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2019年第2期|022601.1-022601.9|共9页
  • 作者单位

    Delft Univ Technol, Aerosp Engn Fac, Prop & Power, Kluyverweg 1, NL-2629 HS Delft, Netherlands;

    Delft Univ Technol, Aerosp Engn Fac, Prop & Power, Kluyverweg 1, NL-2629 HS Delft, Netherlands;

    Delft Univ Technol, Aerosp Engn Fac, Prop & Power, Kluyverweg 1, NL-2629 HS Delft, Netherlands;

    Delft Univ Technol, Mech Engn Fac, Energy Technol, Leeghwaterstr 39, NL-2628 CB Delft, Netherlands;

    Delft Univ Technol, Mech Engn Fac, Energy Technol, Leeghwaterstr 39, NL-2628 CB Delft, Netherlands;

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