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Sweep and Compressibility Effects on Active Separation Control at High Reynolds Numbers

机译:高雷诺数下扫掠和压缩对主动分离控制的影响

摘要

This paper explores the effects of compressibility, sweep and excitation location on active separation control at high Reynolds numbers. The model, which was tested in a cryogenic pressurized wind tunnel, simulates the upper surface of a 20% thick Glauert Goldschmied type airfoil at zero angle of attack. The flow is fully turbulent since the tunnel sidewall boundary layer flows over the model. Without control, the flow separates at the highly convex area and a large turbulent separation bubble is formed. Periodic excitation is applied to gradually eliminate the separation bubble. Two alternative blowing slot locations as well as the effect of compressibility, sweep and steady suction or blowing were studied. During the test the Reynolds numbers ranged from 2 to 40 million and Mach numbers ranged from 0.2 to 0.7. Sweep angles were 0 and 30 deg. It was found that excitation must be introduced slightly upstream of the separation region regardless of the sweep angle at low Mach number. Introduction of excitation upstream of the shock wave is more effective than at its foot. Compressibility reduces the ability of steady mass transfer and periodic excitation to control the separation bubble but excitation has an effect on the integral parameters, which is similar to that observed in low Mach numbers. The conventional swept flow scaling is valid for fully and even partially attached flow, but different scaling is required for the separated 3D flow. The effectiveness of the active control is not reduced by sweep. Detailed flow field dynamics are described in the accompanying paper.
机译:本文探讨了高雷诺数下可压缩性,波及和激发位置对主动分离控制的影响。该模型在低温加压风洞中进行了测试,它模拟了20%厚的Glauert Goldschmied型机翼在零迎角下的上表面。由于隧道侧壁边界层在模型上流动,因此流动是完全湍流的。在没有控制的情况下,气流会在高凸区域分离,并形成大的湍流分离气泡。施加周期性激励以逐渐消除分离气泡。研究了两个可选的吹气槽位置以及可压缩性,吹扫和稳定吸力或吹气的影响。在测试过程中,雷诺数为2到4000万,马赫数为0.2到0.7。扫角为0度和30度。发现在低马赫数下,无论扫掠角如何,都必须在分离区域的上游稍稍引入激励。在激波上游引入激励比在激波足部更有效。可压缩性降低了稳定传质和周期性激发来控制分离气泡的能力,但是激发对积分参数有影响,这与在低马赫数下观察到的相似。传统的扫掠流缩放适用于完全甚至部分连接的流,但分离的3D流需要不同的缩放。主动控制的有效性不会因扫描而降低。随附的论文中详细介绍了流场动力学。

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