振荡翼型在小幅度非对称振荡下的尾迹特性

Colin M. Stutz, D. Bohl, Melissa A. Green
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引用次数: 0

摘要

由于其在低雷诺数下产生推力的潜力,俯仰翼型周围的流动以及其后的流动重新引起了人们的兴趣。过去的工作集中在翼型对称俯仰产生的流场上。对不对称运动影响的研究更为有限。这项工作的重点是尾流模式的发展,由于不对称俯仰。采用粒子图像测速技术(PIV)对NACA0012型小幅高频非对称俯仰时的流场进行了定量分析。翼型是倾斜约四分之一弦点的幅度±4°在k = 2.6-5.8在Rec = 12000降低频率。研究了50/50、40/60和30/70的俯仰对称性,其中对称性是由俯仰向下运动和俯仰向上运动所花费的周期的比例来定义的。数据表明,对于50/50(对称)运动,形成了两个强度相等的交替符号涡。非对称情况表明,在俯仰运动的“快”部分形成了一个单一的涡旋。在俯仰运动的“慢”部分形成了多个漩涡。二次涡的数量和下游涡的演变取决于对称值。在某些情况下,它们保持孤立,但绕着其他涡旋结构旋转,而在其他情况下,它们与其他涡旋结构配对,最后,当降低频率和不对称值足够高时,涡旋阵列显示出循环之间的相互作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wake Properties of an Oscillating Airfoil Undergoing Small Amplitude Asymmetric Oscillation
The flow around, and in the wake of, pitching airfoils has received renewed interest due to its potential for thrust production at low Reynolds numbers. Past work has centered on the flow fields generated by symmetric pitching of the airfoil. Studies investigating the effects of asymmetric motion are more limited. This work focuses on the wake patterns developed due to asymmetric pitching. Particle Image Velocimetry (PIV) is used to quantify the flow field around a NACA0012 airfoil undergoing small amplitude, high frequency asymmetric pitching. The airfoil is pitched about the quarter chord point with an amplitude of ±4° at reduced frequencies of k = 2.6–5.8 at a Rec = 12000. Pitching symmetries of 50/50, 40/60 and 30/70 are studied, where the symmetry is defined by the fraction of the cycle spent in the pitch down versus pitch up motion. The data show that for the 50/50 (symmetric) motions two alternating sign vortices, with equivalent strength, are formed as expected. The asymmetric cases show that a single vortex is formed during the “fast” portion of the pitching motion. Multiple vortices are formed during the “slow” portion of the pitching motion. The number of secondary vortices and the downstream evolution of the vortices depends on the symmetry value. In some cases they remain isolated but orbit other vortical structures, while in other cases they pair with other vortical structures, and finally when the reduced frequency and asymmetry values are high enough the vortex array shows interaction between cycles.
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