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Variation Simulation of Stresses Using the Method of Influence Coefficients

机译:用影响系数法模拟应力变化

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In every manufacturing situation there are geometric deviations leading to variation in properties of the manufactured products. Variation affects the manufacturability, functions and aesthetics of the products. Therefore, a number of methods and tools have been developed during the last 20 yr in order to assure the geometric quality and to minimize the effect of variability. These methods and tools have mainly been developed for rigid-or sheet metal components. Plastics or composites have been an increasingly popular material due to their flexible mechanical properties and their relative ease in manufacturing. However, their mechanical properties are introducing challenges that have not often been addressed in the process of geometry assurance. One challenge is to assure that the stresses introduced, as a consequence of non-nominal assembly, are kept well below critical limits during the conditions of use. In this paper, we are proposing the use of the method of influence coefficients (MIC) to simulate the distribution of von Mises stresses in assembled components. This method will be compared to the more flexible but computationally much heavier direct Monte Carlo (DMC) method, which is not suitable for variation simulation due to the large number of runs required for statistical inference. Two industrial case studies are presented to elicit the need of the proposed method.
机译:在每种制造情况下,都会存在几何偏差,从而导致制成品的性能发生变化。变化会影响产品的可制造性,功能和外观。因此,在过去的20年中开发了许多方法和工具,以确保几何质量并最大程度地减少可变性的影响。这些方法和工具主要是针对刚性或钣金零件开发的。塑料或复合材料由于其灵活的机械性能和相对容易的制造而成为越来越受欢迎的材料。但是,它们的机械性能带来了在几何结构保证过程中未经常解决的挑战。一项挑战是确保在使用条件下,由于非标称组装而导致的应力保持在临界极限以下。在本文中,我们建议使用影响系数(MIC)方法来模拟组装部件中的von Mises应力分布。将该方法与更灵活但计算量更大的直接蒙特卡洛(DMC)方法进行比较,该方法由于统计推断需要大量运行,因此不适合进行变化模拟。提出了两个工业案例研究,以激发提出的方法的需求。

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