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Minimizing assembly variation in selective assembly for complex assemblies using genetic algorithm

机译:使用遗传算法最小化复杂装配的选择性装配中的装配变化

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When a product consists of two or more components, the quality of that product depends upon the quality of the mating parts. The mating parts may be manufactured using different machines and processes with different standard deviations. Therefore, the dimensional distributions of the mating parts are not similar. This results in clearance and surplus parts between the mating parts. In this paper, a new method for selective assembly is proposed to minimize the clearance variation without any surplus part for a complex assembly which consists of three components which are gears. In this assembly, each component will have 1000 mating parts totally but with dissimilar dimensional distribution. Genetic algorithm is used to find the best combination to obtain the minimum clearance variation and zero surplus part in this assembly.
机译:当产品由两个或多个组件组成时,该产品的质量取决于配合零件的质量。配合零件可以使用具有不同标准偏差的不同机器和工艺来制造。因此,配合部分的尺寸分布不相似。这导致配合零件之间的间隙和多余零件。在本文中,提出了一种用于选择性组装的新方法,该方法可将间隙变化最小化,而对于由三个齿轮组成的复杂组件,则无需任何多余的零件。在此组件中,每个组件总共将具有1000个配合零件,但尺寸分布不同。遗传算法用于找到最佳组合,以获得最小的间隙变化和零剩余零件。

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