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针对不同的自行车手姿势,对个体身体部位的阻力和对流传热进行计算流体动力学分析。

Computational fluid dynamics analysis of drag and convective heat transfer of individual body segments for different cyclist positions.

机构信息

Laboratory of Building Physics, Department of Civil Engineering, Katholieke Universiteit Leuven, Kasteelpark Arenberg 40, 3001 Heverlee, Belgium.

出版信息

J Biomech. 2011 Jun 3;44(9):1695-701. doi: 10.1016/j.jbiomech.2011.03.035. Epub 2011 Apr 16.

Abstract

This study aims at investigating drag and convective heat transfer for cyclists at a high spatial resolution. Such an increased spatial resolution, when combined with flow-field data, can increase insight in drag reduction mechanisms and in the thermo-physiological response of cyclists related to heat stress and hygrothermal performance of clothing. Computational fluid dynamics (steady Reynolds-averaged Navier-Stokes) is used to evaluate the drag and convective heat transfer of 19 body segments of a cyclist for three different cyclist positions. The influence of wind speed on the drag is analysed, indicating a pronounced Reynolds number dependency on the drag, where more streamlined positions show a dependency up to higher Reynolds numbers. The drag and convective heat transfer coefficient (CHTC) of the body segments and the entire cyclist are compared for all positions at racing speeds, showing high drag values for the head, legs and arms and high CHTCs for the legs, arms, hands and feet. The drag areas of individual body segments differ markedly for different cyclist positions whereas the convective heat losses of the body segments are found to be less sensitive to the position. CHTC-wind speed correlations are derived, in which the power-law exponent does not differ significantly for the individual body segments for all positions, where an average value of 0.84 is found. Similar CFD studies can be performed to assess drag and CHTCs at a higher spatial resolution for applications in other sport disciplines, bicycle equipment design or to assess convective moisture transfer.

摘要

本研究旨在以高空间分辨率研究自行车运动员的阻力和对流换热。这种更高的空间分辨率与流场数据相结合,可以深入了解阻力降低机制以及与热应激和服装的热湿性能相关的自行车运动员的热生理反应。计算流体动力学(稳态雷诺平均纳维-斯托克斯方程)用于评估三种不同自行车运动员位置下 19 个体段的阻力和对流换热。分析了风速对阻力的影响,表明阻力对雷诺数有明显的依赖性,更流线型的位置在更高的雷诺数下显示出更强的依赖性。比较了所有位置下的赛车速度的体段和整个自行车运动员的阻力和对流换热系数(CHTC),结果表明头部、腿部和手臂的阻力值较高,腿部、手臂、手部和脚部的 CHTC 值较高。不同自行车运动员位置的个体体段的阻力面积差异明显,而体段的对流热损失对位置的敏感性较低。得出了 CHTC-风速的相关性,其中所有位置的个体体段的幂律指数没有显著差异,平均为 0.84。类似的 CFD 研究可以用于评估其他运动学科、自行车设备设计或评估对流湿转移中的更高空间分辨率下的阻力和 CHTC。

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