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Stereoscopic PIV Measurements of Swirl Distortion on a Full-Scale Turbofan Engine Inlet

机译:立体涡扇发动机进气道上旋流畸变的立体PIV测量

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There is a present need for simulating and measuring the inlet swirl distortion generated by airframe/engine system interactions to identify potential degradation in fan performance and operability in a full-scale, ground testing environment. Efforts are described to address this need by developing and characterizing methods for complex, prescribed distortion patterns. A relevent inlet swirl distortion profile was generated by a novel new method, dubbed the StreamVane method, and measured in a small scale tunnel using stereoscopic particle image velocimetry (PIV) as a precursor for swirl distortion generation and characterization in an operating turbofan research engine. The StreamVane prototype tested was made of ABS plastic using additive manufacturing and was used to generate swirl distortion patterns that mimick boundary layer ingesting engine inlets with a pair of tightly wound vortices and swirl angle magnitudes up to 15°. Diagnostic development efforts for distortion measurements within the research engine paralleled the StreamVane characterization. The system used for research engine PIV measurements is described along with data obtained in the wake of a total pressure distortion screen for engine conditions at idle and 80% corrected fan speed engine power settings. Data reduction algorithms are put forth to reduce spurious velocity vectors and uncertainty estimations specific to the inlet distortion test rig are made. Results indicate that the methods developed may be used to both generate and characterize complex distortion profiles at the aerodynamic interface plane, providing new information about airframe/engine integration.
机译:当前需要模拟和测量由机身/发动机系统相互作用产生的进气涡流畸变,以识别在全面的地面测试环境中风扇性能和可操作性的潜在下降。描述了通过开发和表征复杂的,规定的失真模式的方法来满足这种需求的努力。通过称为StreamVane方法的新方法生成相关进气涡旋畸变轮廓,并使用立体粒子图像测速仪(PIV)作为涡旋畸变发生和表征的先驱,在小型隧道中对其进行测量,并在运行的涡扇研究引擎中进行表征。被测试的StreamVane原型是由ABS塑料通过增材制造制成的,并用于产生涡流扭曲模式,该模式模仿边界层吸入发动机进气口,并带有一对紧密缠绕的涡流,涡流角度幅度最大为15°。在研究引擎中进行失真测量的诊断开发工作与StreamVane表征并行。描述了用于研究发动机PIV测量的系统,以及在怠速和修正的风扇转速发动机功率设置为80%的发动机工况的总压力畸变屏幕之后获得的数据。提出了数据减少算法以减少杂散速度矢量,并对进气口变形试验台进行了不确定性估计。结果表明,所开发的方法可用于在气动界面处生成和表征复杂的变形曲线,从而提供有关机身/发动机集成的新信息。

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