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Methodology to design a vibration absorption footplate for motorcycle application: From phenomena investigation to prototype performance evaluation

机译:设计摩托车应用减震踏板的方法:从现象研究到原型性能评估

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摘要

The aim of this research is to reduce driver vibration exposure by acting on the modal response of key contact structures. The footplate is one of the components with which the driver comes into contact while riding. For this reason, footplate geometry and structural properties were investigated with a view to re-designing this component in order to reduce driver exposure.Due to the massive chassis area on which the footplate is constrained, vibrations induced by engine unbalances easily propagate in quasi-steady conditions on all surrounding components, inducing a width frequency band of load excitation. Even though the footplate geometry allows for fairly high natural frequencies, these could occur in the excitation range. Therefore, the first step of the methodology proposed entails the use of a numerical and experimental (modal analysis) procedure to identify the local vibration modes of the original components to detect if/when/how the resonances of the above mentioned components are excited.Due to an awareness of the weakness of the original solution, structural modifications, using numerical models, were studied. The footplate geometry was modified to minimize nodal displacement of the footrest beam binding. All structural modifications were designed, developed and installed on the vehicle.Finally, in order to predict modification efficiency, both the new footplate and the original one were experimentally compared. The comparison was made by means of modal investigations and by positioning the reference vehicle on a suitable roller test bench in order to simulate real working conditions.
机译:这项研究的目的是通过作用于关键接触结构的模态响应来减少驾驶员的振动暴露。踏板是驾驶员骑行时与之接触的组件之一。因此,为了减少驾驶员的暴露,对脚踏板的几何形状和结构特性进行了研究,以减少驾驶员的暴露。由于脚踏板受到很大的底盘面积的限制,发动机不平衡引起的振动很容易在准传动系统中传播。周围所有组件处于稳定状态,从而引起负载激励的宽带频带。即使踏板的几何形状允许相当高的固有频率,也可能在激励范围内发生。因此,所提出的方法的第一步需要使用数值和实验(模态分析)程序来识别原始组件的局部振动模式,以检测上述组件的共振是否/何时/如何被激发。为了意识到原始解决方案的弱点,研究人员使用数值模型对结构进行了修改。修改了脚踏板的几何形状,以最小化脚踏板束缚的节点位移。最后设计,开发和安装了所有结构上的修改。最后,为了预测修改效率,对新踏板和原始踏板进行了实验比较。通过模态研究和将参考车放置在合适的辊道试验台上进行比较,以模拟实际工作条件。

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