动态失速与前缘结节翼型

IF 2.3 3区 工程技术 Q2 ENGINEERING, MECHANICAL
Pere Valls Badia, Stefan Hickel, Fulvio Scarano, Mogeng Li
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引用次数: 0

摘要

前缘凸起的翼型已被证明软化气动失速的开始,并增加升力后失速制度。本研究探讨了动态失速过程中结核的影响。采用风洞实验研究了不同振幅的小结节俯仰翼型,采用大尺度粒子跟踪测速技术确定了三维时间分辨速度场。进行了计算流体动力学模拟,以补充提供压力分布和气动力的实验观察。动态失速主要由前缘形成的涡流控制;本文对动态失速涡(DSV)的涡度、环流和平流路径进行了表征。结核的存在从前缘深刻地改变了边界层。与传统翼型相比,涡度片的卷起明显延迟,导致较弱的DSV。旋涡的形成被转移到下游,整体效果是一个更弱、更短的升力超调,从而使飞机更快地过渡到深度失速。流动分离区(失速细胞)明显地以两个结节波长的稳定间隔划分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dynamic stall on airfoils with leading-edge tubercles

Leading-edge protuberances on airfoils have been shown to soften the onset of aerodynamic stall and to increase lift in the post-stall regime. The present study examines the effect of tubercles during dynamic stall. Pitching airfoils with tubercles of different amplitudes are studied by wind-tunnel experiments, where the three-dimensional time-resolved velocity field is determined using large-scale particle-tracking velocimetry. Computational fluid dynamics simulations are carried out that complement the experimental observations providing pressure distribution and aerodynamic forces. The dynamic stall is dominated by a vortex formed at the leading edge; we characterize the vorticity, circulation, and advection path of this dynamic-stall vortex (DSV). The presence of the tubercles profoundly modifies the boundary layer from the leading edge. The roll-up of the vorticity sheet is significantly delayed compared to a conventional airfoil, resulting in a weaker DSV. The vortex formation is shifted downstream, with the overall effect of a weaker and shorter lift overshoot, in turn enabling a quicker transition to deep stall. Regions of flow separation (stall cells) are visibly compartmentalized with a stable spacing of two tubercles wavelengths.

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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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