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THE STRUCTURAL DESIGN OF FRONT MOTORBIKE SUSPENSIONS

机译:前摩托车悬架的结构设计

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摘要

The fundamental goal of this paper is to provide a methodology useful for the structural design and optimization of front motorbike suspensions. Two different types of shaft-hub couplings are normally used to assembly the whole suspension: (i) an interference-fit coupling (between the fork and the steering pin) and (ii) a clamped joint (between the fork and the leg and between the leg and the wheel pin).Firstly the Design of Experiment method has been applied in order to evaluate the static friction coefficient μ_II. Secondly a mathematical model, based on the thick-wall cylinder theory, has been developed in order to calculate the tensile state in the fork-pin couplings. Finally other mathematical models have been defined with the aim to calculate the maximum bending stress and the mean coupling pressure generated in the fork-leg and in the wheel-clamp couplings. The research results have been used to realize an innovative software (Leg Design©) that is useful to design and to verify the whole front motorbike suspensions with correct and effective results obtained for different geometries and material combinations.
机译:本文的基本目标是提供一种对前摩托车悬架的结构设计和优化有用的方法。通常使用两种不同类型的轴-轮毂联轴器来组装整个悬架:(i)过盈配合联轴器(在前叉和转向销之间)和(ii)夹紧接头(在前叉和腿之间以及之间)腿和车轮销)。 首先,采用“实验设计”方法来评估静摩擦系数μ_II。其次,基于厚壁圆筒理论,建立了一个数学模型,以计算叉销联轴器的拉伸状态。最后,还定义了其他数学模型,目的是计算叉腿和车轮夹紧联轴器中产生的最大弯曲应力和平均联轴器压力。研究结果已用于实现创新的软件(Leg Design©),该软件可用于设计和验证整个前摩托车悬架,并针对不同的几何形状和材料组合获得正确有效的结果。

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