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Aerodynamics of Fixed and Rotating Spoked Cycling Wheels

机译:固定轮辐和旋转轮辐的空气动力学

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The performance of a semiracing spoked wheel is numerically and experimentally studied at full size in a wind tunnel. The numerical investigation is divided into two parts. In the first part, the wheel is considered to be fixed (no rotation) and the numerical results are compared to the experimental measurements. The flow past the wheel is treated as stationary and turbulent. The effects of cross wind and the wheel's speed on the drag, side force, and yaw moment are investigated. Numerical results are presented via diagrams and plots at various yaw angles. Both the measurements and predictions agree quite well and they show a considerable increase in the yaw moment and side force at medium and high yaw angles. The axial drag force initially increases with yaw angle (up to 7.5 deg) and eventually decreases. Ground effects did not affect the overall loads, except for the vertical force at high yaw angles. In the second part, the effects of rotation have been taken into account. The wheel rotates at constant angular velocities and the flow is modeled as nonstationary and turbulent. The aerodynamic performance of the wheel is strongly affected by the rotational speed. In most of the cases, as the latter parameter increases, the loads nonlinearly increase. The rotation generates asymmetrical loading, since the flow is accelerated in one side and decelerated in the other (the Magnus effect). A vertical force is produced, which is dependent on the ratio of the rotational to the free-stream speed. Moreover, in an attempt to assess the effects of the number of spokes to the aerodynamic performance, two other models with 8 and 32 spokes have been numerically tested and compared to the original one (16 spokes). The results revealed, as expected, an increase in the axial drag and vertical force with the number of spokes.
机译:在风洞中以全尺寸数值和实验研究了半赛车辐条轮的性能。数值研究分为两个部分。在第一部分中,车轮被认为是固定的(不旋转),并将数值结果与实验测量值进行比较。通过车轮的气流被视为静止且湍流。研究了侧风和车轮速度对阻力,侧向力和偏航力矩的影响。数值结果通过各种偏航角下的图表和曲线图显示。测量和预测都很好地吻合,并且它们显示出在中等和高偏航角下偏航力矩和侧向力都有相当大的增加。轴向阻力最初随着偏航角(最大7.5度)而增加,并最终减小。除了高偏航角时的垂直力外,地面效应不会影响总载荷。在第二部分中,考虑了旋转的影响。砂轮以恒定的角速度旋转,并且将流动建模为非平稳湍流。车轮的空气动力学性能受到转速的强烈影响。在大多数情况下,随着后一个参数的增加,负载将非线性增加。旋转产生不对称的载荷,因为流动的一侧加速,另一侧减速(马格努斯效应)。产生垂直力,该垂直力取决于旋转速度与自由流速度的比率。此外,为了评估辐条数量对空气动力性能的影响,已经对另外两个分别具有8个和32个辐条的模型进行了数值测试,并与原始模型(16个辐条)进行了比较。结果表明,正如预期的那样,轴向阻力和垂直力随辐条数量的增加而增加。

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