Vortex flow of downwind sails

IF 2.8 Q2 MECHANICS Flow (Cambridge, England) Pub Date : 2023-02-22 DOI:10.1017/flo.2023.1
A. Arredondo-Galeana, H. Babinsky, I. M. Viola
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Abstract

Abstract This paper sets out to investigate the vortex flow of spinnaker yacht sails, which are low-aspect-ratio highly cambered wings used to sail downwind. We tested three model-scale sails with the same sections but different twists over a range of angles of attack in a water tunnel at a Reynolds number of 21 000. We measured the forces with a balance and the velocity field with particle image velocimetry. The sails experience massively separated three-dimensional flow and leading-edge vortices convect at half of the free-stream velocity in a turbulent shear layer. Despite the massive flow separation, the twist of the sail does not change the lift curve slope, in agreement with strip theory. As the angle of attack and the twist vary, flow reattachment might occur in the time-average sense, but this does not necessarily result in a higher lift to drag ratio as the vorticity field is marginally affected. Finally, we investigated the effect of secondary vorticity, vortex stretching and diffusion on the vorticity fluxes. Overall, these results provide new insights into the vortex flow and associated force generation mechanism of wings with massively separated flow.
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顺风帆的涡流
摘要本文研究了用于顺风航行的低展弦比高弯度帆的涡流。我们在雷诺数为21000的风洞中测试了三个模型尺度的帆,它们具有相同的截面,但在一定的攻角范围内具有不同的扭曲度。我们用天平测量了力,用粒子图像测速仪测量了速度场。船帆经历了大规模分离的三维流动,前缘涡流在湍流剪切层中以自由流速度的一半对流。尽管有大量的气流分离,但帆的扭曲并没有改变升力曲线的斜率,这与条形理论一致。随着攻角和扭曲度的变化,可能会发生时间平均意义上的气流再附着,但这并不一定会导致更高的升阻比,因为涡度场受到轻微影响。最后,我们研究了二次涡度、涡旋拉伸和扩散对涡度通量的影响。总的来说,这些结果为大规模分离流机翼的涡流和相关力产生机制提供了新的见解。
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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