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Bicycle steering and roll responses

机译:自行车转向和侧倾响应

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摘要

This article investigates the effects of different steering geometries on the steering response, system stability and frequency response of bicycles. A computer model was developed using Simulink™. The model simulates different bicycle designs allowing several different steering geometries to be quantified in terms of performance. It was validated by data available in literature and from an experimental investigation conducted with a bicycle fitted with steering and roll sensors. Three key variables were examined in detail: the head tube angle, front fork rake and bicycle speed. Their actual importance was determined by systematically changing each key variable one at a time while keeping all other terms constant. Large variations in roll and yaw responses show how sensitive bicycles are to small changes in head tube angles and rake dimensions. At higher speeds, the observed steering responses support the common observation that bicycles are more stable and easier to ride at higher speeds. These simulations show the importance of correctly designing a bicycle's steering geometry in order to optimise steering performance and the sensitivity of bicycles to small changes in geometry.
机译:本文研究了不同转向几何形状对自行车转向响应,系统稳定性和频率响应的影响。使用Simulink™开发了计算机模型。该模型模拟了不同的自行车设计,从而可以根据性能对几种不同的转向几何形状进行量化。文献中的数据以及使用装有转向和侧倾传感器的自行车进行的实验研究均证实了这一点。详细检查了三个关键变量:前管角度,前叉前倾角和自行车速度。它们的实际重要性是通过一次系统地更改每个关键变量,同时保持所有其他术语不变来确定的。横摆和横摆响应的大变化表明自行车对前管角度和前倾角的微小变化有多敏感。在较高的速度下,观察到的转向响应支持常见的观察结果,即自行车更稳定,更容易以较高的速度骑行。这些模拟表明正确设计自行车的转向几何形状以优化转向性能和自行车对几何形状小变化的敏感性的重要性。

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