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Reliability-Based Design of a Slat-Track Fatigue Life Using Mesh Morphing Technology

机译:基于网格变形技术的平板轨道疲劳寿命基于可靠性的设计

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Although the aerospace production process is much better controlled than in other industries, it remains true that very small manufacturing tolerances exist in the geometrical parameters such as flange thickness and hole diameters. In the current design process, the effect of this manufacturing variability on the structural durability and safety cannot be accurately assessed and is hence compensated for by applying safety factors. This is not an ideal situation, because it may lead to slightly overdesigned structures. A much more promising approach is to include probabilistic models of design variables into the mechanical simulation process. With a new methodology based on reliability analysis, engineers can obtain a better understanding of the actual effect of the manufacturing tolerances and of variability in material properties. Based on the analysis results, the robustness and reliability of the design can be assessed and improved if needed. In this paper, the aforementioned probabilistic approach is demonstrated on a slat-track structure. Measurements of different geometrical properties were collected during the manufacturing process and their variability was characterized probabilistically with statistical models. Then a reliability analysis was carried out using mesh morphing technology and fatigue life predictions with an industrial-sized finite element model of the slat track to assess the reliability of the structure in terms of fatigue life. The outcome of the analysis consists of a probabilistic model of the structural performance (e.g., fatigue life for the slat track), given the variability in the geometrical parameters. Then a reliability-based design optimization procedure was carried out to improve the design of the slat track while maintaining the same reliability of the nominal design.
机译:尽管航空航天生产过程的控制要比其他行业要好得多,但仍然确实存在这样的几何公差,例如法兰厚度和孔直径很小的制造公差。在当前的设计过程中,这种制造差异性对结构耐用性和安全性的影响无法准确评估,因此可以通过应用安全系数来补偿。这不是理想的情况,因为它可能会导致结构略为过度设计。一种更有希望的方法是将设计变量的概率模型包括到机械仿真过程中。借助基于可靠性分析的新方法,工程师可以更好地了解制造公差和材料特性变化的实际影响。根据分析结果,可以评估和改进设计的鲁棒性和可靠性。在本文中,在板条轨道结构上展示了上述概率方法。在制造过程中收集了不同几何特性的测量值,并通过统计模型概率性地表征了它们的可变性。然后使用网格变形技术和疲劳寿命预测以及板条轨道的工业尺寸有限元模型进行可靠性分析,以评估疲劳寿命方面的结构可靠性。给定几何参数的可变性,分析结果包括结构性能的概率模型(例如,板条轨道的疲劳寿命)。然后进行了基于可靠性的设计优化程序,以改进板条轨道的设计,同时保持与名义设计相同的可靠性。

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