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An Approach for the Systematic Development of Progressive Light Weight Spring Element Concepts in Vehicle Constructions

机译:车辆结构中渐进式轻型弹簧元件概念的系统发展方法

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Commercial vehicles are mostly equipped with pneumatic spring elements which lead to a perfect height levelling and spring rate adjustment under different loading conditions. However, pneumatic springs are not common in light commercial vehicles where passive spring elements, e.g. single- and multi-leaf springs, are still be used. Since those vehicles are covering a wide range of different loads the spring elements frequently exhibit a progressive spring characteristic, i.e. the spring rate is adjusted under deflection as soon as the load is increased. The need for light weight design also relates to light commercial vehicle so that glass fibre reinforced plastic (GFRP) has become a suitable substitute for high strength steel. Furthermore GFRP allows for innovative as well as functionally and technologically improved constructional solutions of progressive spring elements, e.g. the single-leaf spring approach by Schilrmann et al [1].However, the above mentioned solution is sometimes rather solitaire and no systematic approach for its genesis exits. Hence, this contribution shows an approach for a more systematic development of progressive light weight spring element concepts in vehicle construction. Different approaches of implementing a progressive spring rate characteristic are presented in the introduction. A simple analytical model of a bending beam considering a variety of boundary conditions has been set up to discuss the effect of bearing stiffness on the spring rate.The model serves as a basis for a kind of toolbox for a more systematic approach for the development of the desired progressive spring elements. It allows to identify and. to select a balanced concept for a progressive light weight spring element which also considers the application of the appropriate spring material at any specific part of the construction.
机译:商用车辆主要配备有气动弹簧元件,这导致不同的负载条件下的完美高度和弹簧速率调节。然而,气动弹簧在被动弹簧元件的光商用车辆中不常见,例如,例如被动弹簧元件。仍然使用单叶弹簧。由于这些车辆覆盖各种不同的载荷,因此弹簧元件经常表现出渐进弹簧特性,即,一旦负载增加,弹簧速率就在偏转下调整。重量轻设计的需要还涉及轻型商用车辆,使得玻璃纤维增​​强塑料(GFRP)已成为高强度钢的合适替代品。此外,GFRP允许创新以及功能和技术地改善的渐进弹簧元件的结构解决方案,例如, Schilrmann等人的单叶弹簧方法[1]。然而,上述溶液有时是相当托立人,并且没有对其成因出口的系统方法。因此,这种贡献示出了一种用于更系统地发展车辆结构中的渐进轻型弹簧元件概念的方法。在引言中介绍了实施渐进弹簧率特征的不同方法。考虑各种边界条件的弯曲光束的简单分析模型已经设置为讨论轴承刚度对弹簧速率的影响。该模型作为一种工具箱的基础,以实现更系统的发展方法所需的渐进弹簧元件。它允许识别和。选择渐进式轻度弹簧元件的平衡概念,该概念还认为在建筑的任何特定部分的适当弹簧材料的应用中。

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