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Effect of Single-Row and Double-Row Passive Vortex Generators on the Deep Dynamic Stall of a Wind Turbine Airfoil

机译:单排和双列无源涡流发生器对风力涡轮机翼型深动态摊位的影响

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摘要

Passive vortex generators (VGs) have been widely applied on wind turbines to boost the aerodynamic performance. Although VGs can delay the onset of static stall, the effect of VGs on dynamic stall is still incompletely understood. Therefore, this paper aims at investigating the deep dynamic stall of NREL S809 airfoil controlled by single-row and double-row VGs. The URANS method with VGs fully resolved is used to simulate the unsteady airfoil flow. Firstly, both single-row and double-row VGs effectively suppress the flow separation and reduce the fluctuations in aerodynamic forces when the airfoil pitches up. The maximum lift coefficient is therefore increased beyond 40%, and the onset of deep dynamic stall is also delayed. This suggests that deep dynamic-stall behaviors can be properly controlled by VGs. Secondly, there is a great difference in aerodynamic performance between single-row and double-row VGs when the airfoil pitches down. Single-row VGs severely reduce the aerodynamic pitch damping by 64%, thereby undermining the torsional aeroelastic stability of airfoil. Double-row VGs quickly restore the decreased aerodynamic efficiency near the maximum angle of attack, and also significantly accelerate the flow reattachment. The second-row VGs can help the near-wall flow to withstand the adverse pressure gradient and then suppress the trailing-edge flow separation, particularly during the downstroke process. Generally, double-row VGs are better than single-row VGs concerning controlling deep dynamic stall. This work also gives a performance assessment of VGs in controlling the highly unsteady aerodynamic forces of a wind turbine airfoil.
机译:被动涡流发生器(VGS)已广泛应用于风力涡轮机,以提高空气动力学性能。虽然VGS可以延迟静态失速的开始,但仍然不完全理解VGS对动态档位的影响。因此,本文旨在调查由单排和双排VGS控制的NREL S809翼型的深动态摊位。使用VGS完全解决的urans方法用于模拟不稳定的翼型流。首先,单行和双排VGS都有效地抑制了流动分离,并在翼型倾斜时减小空气动力学的波动。因此,最大升力系数增加超过40%,并且深部动态档位的开始也延迟。这表明可以通过VGS正确控制深度动态失速行为。其次,当翼型击中时,单排和双排VGS之间的空气动力学性能存在很大差异。单排VGS严重降低了空气动力学沥青阻尼的64%,从而破坏了翼型的扭转空气弹性稳定性。双排VGS快速恢复最大攻角附近的空气动力学效率降低,并且还显着加速了流量重新连接。第二行VGS可以帮助近壁流能承受不利的压力梯度,然后抑制后缘流分离,特别是在下行过程中。通常,双排VGS优于控制深动态失速的单排VGS。这项工作还提供了对控制风力涡轮机翼型的高度不稳定空气动力的VGS的性能评估。

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