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Femtosecond Laser Tagging Characterization of a Sweeping Jet Actuator Operating in the Compressible Regime

机译:飞秒激光标记特性在可压缩状态下运行的扫射式射流执行器

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A sweeping jet (SWJ) actuator operating over a range of nozzle pressure ratios (NPRs) was characterized with femtosecond laser electronic excitation tagging (FLEET), single hotwire anemometry (HWA) and high-speed/phase-averaged schlieren. FLEET velocimetry was successfully demonstrated in a highly unsteady, oscillatory flow containing subsonic through supersonic velocities. Qualitative comparisons between FLEET and HWA (which measured mass flux since the flow was compressible) showed relatively good agreement in the external flow profiles. The spreading rate was found to vary from 0.5 to 1.2 depending on the pressure ratio. The precision of FLEET velocity measurements in the external flow field was poorer (≈25 m/s) than reported in a previous study due to the use of relatively low laser fluences, impacting the velocity fluctuation measurements. FLEET enabled velocity measurements inside the device and showed that choking likely occurred for NPR ≥ 2.0, and no internal Shockwaves were present. Qualitative oxygen concentration measurements using FLEET were explored in an effort to gauge the jet's mixing with the ambient. The jet was shown to mix well within roughly four throat widths and mix fully within roughly eight throat widths. Schlieren provided visualization of the internal and external flow fields and showed that the qualitative structure of the internal flow does not vary with pressure ratio and the sweeping mechanism observed for incompressible NPRs also probably holds for compressible NPRs.
机译:使用飞秒激光电子激励标签(FLEET),单热线风速仪(HWA)和高速/平均相位线来表征在一定范围的喷嘴压力比(NPR)上运行的清扫喷头(SWJ)致动器。 FLEET测速技术已成功地证明是一种高度不稳定的振荡流,其中包含通过超音速产生的亚音速。 FLEET和HWA之间的定性比较(由于流动是可压缩的,因此测量了质量通量)在外部流动曲线中显示出相对较好的一致性。发现扩散速率根据压力比在0.5至1.2之间变化。由于使用了相对较低的激光能量密度,影响了速度波动测量,因此外部流场中FLEET速度测量的精度比以前的研究要差(≈25m / s)。 FLEET启用了设备内部的速度测量,并显示了当NPR≥2.0时可能会发生窒息,并且没有内部冲击波。探索了使用FLEET进行定性氧气浓度测量的方法,以测量射流与周围环境的混合情况。射流在大约四个喉咙宽度内混合良好,在大约八个喉咙宽度内完全混合。 Schlieren提供了内部和外部流场的可视化结果,并表明内部流的定性结构不会随压力比而变化,对于不可压缩NPR观察到的清扫机制也可能适用于可压缩NPR。

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