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StreamVane Turbofan Inlet Swirl Distortion Generator: Mean Flow and Turbulence Structure

机译:StreamVane涡扇进气涡流发生器:平均流量和湍流结构

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摘要

Engine/airframe integration in advanced aircraft concepts must account for nonuniform flows ingested by turbofan engines. In this work, flow details from a vane-based distortion generator were analyzed for turbulence structure and aerodynamic scaling of the mean flow. Experimental results were obtained using particle image velocimetry in a small-scale facility and a full-scale research turhofan engine for the same vane geometry. Tests were performed at nearly the same Mach number to isolate Reynolds number effects, but analysis and prior work indicate that the flow development downstream of the vanes is Mach number independent in the subsonic regime. As hypothesized from inviscid vortex dynamics, the secondary mean flow angles were consistent across scales, indicating Reynolds number independence of the large-scale secondary flow profile generated. Vane wakes produced a complex structure in the streamwise velocity component not seen in the streamwise vorticity, which resembles the distribution from the desired secondary flow profde. The most intense turbulence is concentrated in the outer radial regions of the duct and, as shown by contrast to vane wake-dominated regions, is dominated by shear flow turbulence and unsteadiness due to the distortion profile itself rather than vane wakes. Taken together, these results provide fundamental understanding of the aerodynamics of sw irling flows needed for implementing complex turning vanes in the design of distortion generators.
机译:高级飞机概念中的发动机/机身集成必须考虑涡轮风扇发动机吸入的不均匀气流。在这项工作中,分析了基于叶片的畸变发生器的气流细节,以分析湍流结构和平均流的气动比例。实验结果是在相同规模的叶片几何结构上使用小型设备中的粒子图像测速仪和全面研究的turhofan引擎获得的。在几乎相同的马赫数下进行测试以分离雷诺数效应,但分析和先前的工作表明,叶片的下游流动在亚音速状态下是独立于马赫数的。根据无涡旋动力学的假设,次级平均流角在各个尺度上是一致的,这表明所生成的大规模次级流剖面的雷诺数独立性。叶片尾流在流向速度分量中产生了一个复杂的结构,这在流向涡度中是看不到的,这类似于来自所需二次流动量的分布。最强烈的湍流集中在管道的外部径向区域,并且与叶片尾流为主的区域形成对比,由于变形轮廓本身而不是叶片尾流,剪切流湍流和不稳定导致了湍流。综上所述,这些结果提供了对在畸变发生器的设计中实施复杂的转向叶片所需的旋流的空气动力学的基本理解。

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  • 来源
    《Journal of propulsion and power》 |2018年第2期|340-353|共14页
  • 作者单位

    Virginia Polytechnic Institute and State University, Blacksburg, Virginia 24061-0203;

    Virginia Polytechnic Institute and State University, Blacksburg, Virginia 24061-0203;

    Virginia Polytechnic Institute and State University, Blacksburg, Virginia 24061-0203;

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