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A numerical model for the time-dependent wake of a pedalling cyclist

机译:踩踏骑自行车者的时间依赖性尾尾的数值模型

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摘要

A method for computing the wake of a pedalling cyclist is detailed and assessed through comparison with experimental studies. The large-scale time-dependent turbulent flow is simulated using the Scale Adaptive Simulation approach based on the Shear Stress Transport Reynolds-averaged Navier-Stokes model. Importantly, the motion of the legs is modelled by joining the model at the hips and knees and imposing solid body rotation and translation to the lower and upper legs. Rapid distortion of the cyclist geometry during pedalling requires frequent interpolation of the flow solution onto new meshes. The impact of numerical errors, that are inherent to this remeshing technique, on the computed aerodynamic drag force is assessed. The dynamic leg simulation was successful in reproducing the oscillation in the drag force experienced by a rider over the pedalling cycle that results from variations in the large-scale wake flow structure. Aerodynamic drag and streamwise vorticity fields obtained for both static and dynamic leg simulations are compared with similar experimental results across the crank cycle. The new technique presented here for simulating pedalling leg cycling flows offers one pathway for improving the assessment of cycling aerodynamic performance compared to using isolated static leg simulations alone, a practice common in optimising the aerodynamics of cyclists through computational fluid dynamics.
机译:通过与实验研究的比较,详细且评估了计算踩踏骑自行车者之尾的方法。使用基于剪切应力运输雷诺平均的Navier-Stokes模型的刻度自适应仿真方法模拟了大规模的时间依赖性湍流。重要的是,通过在臀部和膝盖处加入模型并将固体旋转和翻译与下腿施加到下腿和上下腿来建模腿的运动。踩踏期间骑自行车者几何形状的快速变形需要将流动溶液频繁插入到新网状物上。评估了在计算的空气动力牵引力上,对该倒退技术固有的数值误差的影响是评估计算的空气动力学阻力。动态腿模拟成功地在踩踏循环上再现骑车者经历的拖曳力的振荡,从而产生来自大规模唤醒流动结构的变化。将用于静态和动态腿模拟获得的空气动力学阻力和流动涡流场与曲柄循环相似的实验结果进行比较。这里介绍用于模拟踩踏腿循环流的新技术提供了一种用于改善循环空气动力学性能的评估与单独使用隔离静态腿仿真的评估,通过计算流体动力学优化骑自行车者的空气动力学的实践。

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