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Improving the fatigue life of a vehicle knuckle with a reliability-based design optimization approach

机译:通过基于可靠性的设计优化方法改善车辆转向节的疲劳寿命

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A major issue in vehicle industry is the presence of variability in the physical properties and manufacturing processes. Deterministic approaches are unable to take into account these variabilities without leading to oversized structures. The necessity of assessing the robustness of a particular design requires a new methodology based on reliability analysis and design optimization through probabilistic models of design variables. The vehicle lifetime is highly determined by the fatigue life of its components. Variability in the material parameters (such as Young's modulus and tensile strength) may have a strong effect on the fatigue life. This is demonstrated in this paper for a vehicle knuckle structure. As a first step, a probabilistic approach to fatigue life prediction is worked out to assess the reliability of vehicle fatigue predictions in the presence of material variability. In a second step, a reliability based design optimization methodology is applied to improve the design reliability for the given material variability. These two steps not only provide better insight in the effect of variability on the fatigue life prediction, but also guidelines to improve the material definition and manufacturing tolerances. One thus obtains a powerful tool to reduce design conservatism while maintaining and even improving the structural safety. This paper intends to demonstrate the effectiveness of this innovative approach by integrating probabilistic design methods into the traditional design process, stressing the advantages that such methodologies bring to the improvement of product fatigue life prediction and structural reliability.
机译:车辆工业中的一个主要问题是物理性质和制造工艺的可变性。确定性方法无法在不导致结构过大的情况下考虑这些差异。评估特定设计的鲁棒性的必要性需要一种基于可靠性分析和通过设计变量概率模型进行设计优化的新方法。车辆使用寿命在很大程度上取决于其组件的疲劳寿命。材料参数的变化(例如杨氏模量和拉伸强度)可能会对疲劳寿命产生很大影响。本文在车辆转向节结构中对此进行了证明。第一步,研究出一种疲劳寿命预测的概率方法,以评估在存在材料变异性的情况下车辆疲劳预测的可靠性。第二步,应用基于可靠性的设计优化方法,以针对给定的材料可变性提高设计可靠性。这两个步骤不仅可以更好地了解可变性对疲劳寿命预测的影响,还可以提供改善材料定义和制造公差的准则。因此,人们获得了一种强大的工具,可在保持甚至提高结构安全性的同时减少设计保守性。本文旨在通过将概率性设计方法整合到传统设计过程中来证明这种创新方法的有效性,并强调了这种方法所带来的优点,这些优点可以改善产品疲劳寿命预测和结构可靠性。

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