Passive control of wing-tip vortices through a grooved-tip design

IF 2.5 3区 工程技术 Q2 ENGINEERING, MECHANICAL
Junchen Tan, Shūji Ōtomo, Ignazio Maria Viola, Yabin Liu
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Abstract

This paper investigates the characteristics and control of tip vortices generated by a finite wing, focusing on the impact of the novel grooved-tip designs. Tip vortices can lead to flow loss, noise, vibration and cavitation in hydrodynamic systems. We propose and develop a grooved-tip design, featuring multiple grooves distributed along the wing tip to alter the tip vortex structure and dynamics. Four grooved-tip designs, including tilted and shrinking grooves, were experimentally investigated. Streamwise and cross-flow particle image velocimetry (PIV) measurements were employed to visualise the flow fields near the wing tip and along the primary tip vortex trajectory. The PIV results demonstrate that the grooved-tip designs significantly reduce the velocity magnitude within the primary tip vortex. This velocity deficit is attributed to the decreased suction within the vortex core. Furthermore, cross-flow PIV measurements reveal that the tip separation vortex is substantially suppressed, and the strength of the primary tip vortex is significantly mitigated. Downstream of the wing, the grooved tips lead to a reduction in vortex swirling strength and an enlargement of the vortex dimensions, suggesting enhanced diffusion and a reduction of the pressure drop of approximately 40%, based on the estimation from a reduced-order model linking pressure to vortex swirling strength. Our findings highlight the potential of these grooved-tip designs to effectively modify tip vortex behaviour and mitigate the pressure drop within the tip vortex region, with negligible changes to the lift and drag performance. This work can inform advanced passive vortex control strategies in wing- and blade-based systems, with potential applications in hydrofoils of marine vessels and underwater vehicles, as well as in turbines and propellers.

翼尖凹槽涡的被动控制
本文研究了有限翼产生的叶尖涡的特性和控制,重点研究了新型凹槽叶尖设计的影响。在流体动力系统中,叶尖涡会导致流动损失、噪声、振动和空化。我们提出并发展了一种沟槽式翼尖设计,该设计采用沿翼尖分布的多个沟槽来改变翼尖涡结构和动力学。实验研究了四种凹槽尖端设计,包括倾斜凹槽和收缩凹槽。采用顺流和横流粒子图像测速技术(PIV)测量翼尖附近和主叶尖涡轨迹的流场。PIV结果表明,凹槽叶尖设计显著降低了主叶尖涡内的速度幅度。这种速度赤字是由于涡核内吸力的减少。此外,横流PIV测量结果表明,叶尖分离涡得到了明显抑制,主叶尖涡强度显著减弱。根据将压力与旋涡强度联系起来的降阶模型估计,在机翼下游,凹槽尖端导致旋涡强度降低,旋涡尺寸增大,表明扩散增强,压降降低约40%。我们的研究结果强调了这些凹槽尖端设计的潜力,可以有效地改变尖端涡的行为,减轻尖端涡区域内的压降,而对升力和阻力性能的影响可以忽略不计。这项工作可以为基于机翼和叶片的系统提供先进的被动涡控制策略,在海洋船舶和水下航行器的水翼以及涡轮机和螺旋桨中具有潜在的应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Experiments in Fluids
Experiments in Fluids 工程技术-工程:机械
CiteScore
5.10
自引率
12.50%
发文量
157
审稿时长
3.8 months
期刊介绍: Experiments in Fluids examines the advancement, extension, and improvement of new techniques of flow measurement. The journal also publishes contributions that employ existing experimental techniques to gain an understanding of the underlying flow physics in the areas of turbulence, aerodynamics, hydrodynamics, convective heat transfer, combustion, turbomachinery, multi-phase flows, and chemical, biological and geological flows. In addition, readers will find papers that report on investigations combining experimental and analytical/numerical approaches.
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