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高山滑雪中的内收姿势的空气动力研究。

Aerodynamic investigation of tucked positions in alpine skiing.

机构信息

Norwegian University of Science and Technology, Department of Civil and Environmental Engineering, N-7491 Trondheim, Norway.

University of Stavanger, Department of Mechanical and Structural Engineering and Materials Science, 4068 Stavanger, Norway.

出版信息

J Biomech. 2021 Apr 15;119:110327. doi: 10.1016/j.jbiomech.2021.110327. Epub 2021 Mar 1.

DOI:10.1016/j.jbiomech.2021.110327
PMID:33684652
Abstract

The purpose of this investigation was to examine the aerodynamics of tucked positions in competitive alpine skiing. To further our understanding of how a skier's position affects the air flow and the resulting aerodynamic drag, a combination of both experimental and simulation methods was used. This study focused in particular on the effect of skier torso and thigh angles relative to the air flow direction, as these two angles have been previously found to be important determinants of aerodynamic performance in tucked positions. Two top 30 world-ranked skiers were investigated in two different wind tunnels, and the results were compared with Computational Fluid Dynamics (CFD) simulations performed using a 3D scan of one of the athlete. To quantify the effect of torso and thigh angles on skier drag, changes in drag were measured relative to baseline positions. Skier drag area increased by approximately 0.8 and 1.2% per degree increase in torso and thigh angles relative to the baseline position, respectively. This trend was consistent between both of the experimental wind tunnel tests as well as the CFD simulations, indicating good agreement between methods. The CFD simulations further indicated that the air flow about the lower legs made the largest contribution to skier drag, accounting for as much as 40-50% of the total drag area in low tuck positions. Based on these findings, a low tuck position where the torso angle approaches 0° and the knees help to fill the gap behind the armpits will minimize skier aerodynamic drag.

摘要

本研究旨在探究竞技高山滑雪中内扣姿势的空气动力学。为了深入了解滑雪者的姿势如何影响气流和由此产生的空气动力阻力,本研究采用了实验和模拟相结合的方法。本研究特别关注滑雪者躯干和大腿相对于气流方向的角度的影响,因为这两个角度先前被发现是内扣姿势下空气动力性能的重要决定因素。本研究对两名排名前 30 的世界顶级滑雪运动员在两个不同的风洞中进行了研究,并将结果与对其中一名运动员的 3D 扫描进行的计算流体动力学 (CFD) 模拟进行了比较。为了量化躯干和大腿角度对滑雪者阻力的影响,相对于基线位置测量了阻力的变化。相对于基线位置,躯干和大腿角度每增加 1 度,滑雪者阻力面积分别增加约 0.8%和 1.2%。这一趋势在两个实验风洞测试和 CFD 模拟中均一致,表明方法之间具有良好的一致性。CFD 模拟进一步表明,小腿周围的气流对滑雪者阻力的贡献最大,在低内扣位置占总阻力面积的 40-50%。基于这些发现,一种躯干角度接近 0°且膝盖有助于填补腋窝后面间隙的低内扣姿势将最大限度地减少滑雪者的空气动力阻力。

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