狭缝叶状射流进入横流的时间分辨PIV测量

M. Lewandowski, Paul J. Kristo, Abdullah G. Weiss, M. Kimber
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引用次数: 0

摘要

研究了在速度比为0.5的条件下,三槽叶圆射流排进横流时的近场混合现象。时间分辨粒子图像测速测量提供了横流中狭缝射流的瞬时速度场,允许在两个感兴趣的垂直平面上评估一阶和二阶湍流统计。首先对独立控制的射流出口和横流进口进行了广泛的表征,以确定速度比和预期的动量交换。横向平均速度分布和展向平均速度分布表明,三个狭缝叶与中心圆形射流的相互作用主要发生在直接射流出口区域,但尾迹中也存在残余影响。雷诺应力的评估旨在量化射流之间的近区域混合,以及它们与横流的相互作用。频率分析表明,尾迹区域的低频谐波比前缘剪切层的高频谐波提供更大的能量贡献。这种行为归因于低流速比,其中自由流速度是射流出口速度的两倍。本文的实验数据和观测结果为低速比下横流中的狭缝射流提供了类似的计算建模,并提供了足够的信息来说明必要的边界条件、流体性质和流场,以便进行验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Time Resolved PIV Measurements of a Slot Lobed Jet Issuing Into a Crossflow
The near field mixing phenomenon created by a round jet with three slot lobes exhausting into a crossflow are investigated at a velocity ratio of 0.5. Time-resolved particle image velocimetry measurements provide instantaneous velocity fields of the slotted jet in crossflow, allowing for evaluation of the first and second order turbulent statistics in two perpendicular planes of interest. The independently controlled jet exit and crossflow inlet are first characterized extensively to confirm the velocity ratio and anticipated momentum exchanges. Spanwise and transverse mean velocity profiles reveal that the interaction of the three slot lobes and the center round jet primarily occur in the immediate jet exit region, though residual effects are also found in the wake. Evaluation of the Reynold stresses aims to quantify the near region mixing between the jets collated geometric features and their interaction with the crossflow. Frequency analysis reveals that low-frequency harmonics in the wake region provide greater energy contributions than that of the higher-frequency harmonics found along the leading edge shear layer. This behavior is attributed to the low velocity ratio, where the freestream velocity is twice as large as the jet exit velocity. The experimental data and observations herein serve analogous computational modeling efforts for the slotted jet in crossflow at low velocity ratios, with ample information to inform necessary boundary conditions, fluid properties, and flow fields for validation.
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