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Sensitivity of an asymmetric 3D diffuser to vortex-generator induced inlet condition perturbations

机译:非对称3D扩散器对涡流发生器引起的入口条件扰动的敏感性

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Modifications of the turbulent separated flow in an asymmetric three-dimensional diffuser due to inlet condition perturbations were investigated using conventional static pressure measurements and velocity data acquired using magnetic resonance velocimetry (MRV). Previous experiments and simulations revealed a strong sensitivity of the diffuser performance to weak secondary flows in the inlet. The present, more detailed experiments were conducted to obtain a better understanding of this sensitivity. Pressure data were acquired in an airflow apparatus at an inlet Reynolds number of 10,000. The diffuser pressure recovery was strongly affected by a pair of longitudinal vortices injected along one wall of the inlet channel using either dielectric barrier discharge plasma actuators or conventional half-delta wing vortex generators. MRV measurements were obtained in a water flow apparatus at matched Reynolds number for two different cases with passive vortex generators. The first case had a pair of counter-rotating longitudinal vortices embedded in the boundary layer near the center of the expanding wall of the diffuser such that the flow on the outsides of the vortices was directed toward the wall. The MRV data showed that the three-dimensional separation bubble initially grew much slower causing a rapid early reduction in the core flow velocity and a consequent reduction of total pressure losses due to turbulent mixing. This produced a 13% increase in the overall pressure recovery. For the second case, the vortices rotated in the opposite sense, and the image vortices pushed them into the corners. This led to a very rapid initial growth of the separation bubble and formation of strong swirl at the diffuser exit. These changes resulted in a 17% reduction in the overall pressure recovery for this case. The results emphasize the extreme sensitivity of 3D separated flows to weak perturbations.
机译:使用常规静态压力测量和使用磁共振测速仪(MRV)获取的速度数据,研究了由于入口条件扰动而导致的非对称三维扩散器中湍流分离流的变化。先前的实验和模拟表明,扩散器性能对入口中的弱二次流具有很强的敏感性。进行了目前更详细的实验,以更好地了解这种敏感性。在气流设备中以雷诺数为10,000的入口获取压力数据。扩散器的压力恢复受到使用介电势垒放电等离子体致动器或传统的半三角翼式涡流发生器沿进口通道壁注入的一对纵向涡流的强烈影响。对于带有无源涡流发生器的两种不同情况,在水流仪中以匹配的雷诺数获得了MRV测量值。第一种情况下,在扩散器膨胀壁中心附近的边界层中嵌入了一对反向旋转的纵向涡流,使得涡流外侧的流动被导向壁。 MRV数据显示,三维分离气泡起初增长得慢得多,从而导致岩心流速迅速提前降低,并因此降低了由于湍流混合而引起的总压力损失。这使整体压力恢复提高了13%。对于第二种情况,涡旋以相反的方向旋转,并且图像涡旋将它们推到角落。这导致分离气泡的初始生长非常迅速,并在扩散器出口形成了强烈的涡流。这些变化使这种情况下的总压力恢复降低了17%。结果强调了3D分离流对微扰的极端敏感性。

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