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Maximising manufacturing system efficiency for multi-characteristic linear assembly by using particle swarm optimisation in batch selective assembly

机译:通过在批量选择装配中使用粒子群优化来最大化多特性线性装配的制造系统效率

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摘要

Quality of an assembly is mainly based on the quality of mating parts. Due to random variation in sources such as materials, machines, operators and measurements, even those mating parts manufactured by the same process vary in their dimensions. When mating parts are assembled linearly, the resulting variation will be the sum of the mating part tolerances. Many assemblies are not able to meet the assembly specification in the available assembly methods. This will decrease the manufacturing system efficiency. Batch selective assembly is helpful to keep the assembly requirement and also to increase the manufacturing system efficiency. In traditional selective assembly, the mating part population is partitioned to form selective groups, and the parts of corresponding selective groups are assembled interchangeably. After the invention of advanced dimension measuring devices and the computer, today batch selective assembly plays a vital role in the manufacturing system. In batch selective assembly, all dimensions of a batch of mating parts are measured and stored in a computer. Instead of forming selective groups, each and every part is assigned to its best matching part. In this work, a particle swarm optimisation based algorithm is proposed by applying the batch selective assembly methodology to a multi-characteristic assembly environment, to maximise the assembly efficiency and thereby maximising the manufacturing system efficiency. The proposed algorithm is tested with a set of experimental problem data sets and is found to outperform the traditional selective assembly and sequential assembly methods, in producing solutions with higher manufacturing system efficiency.
机译:组件的质量主要取决于配合零件的质量。由于材料,机器,操作员和测量等来源的随机变化,即使是通过相同工艺制造的配合零件,其尺寸也会有所不同。当对接零件线性组装时,最终的变化将是对接零件公差的总和。在可用的装配方法中,许多装配不能满足装配规范。这将降低制造系统的效率。批量选择装配有助于保持装配要求并提高制造系统的效率。在传统的选择性装配中,将配合零件族分开以形成选择性组,并且对应的选择性组的零件可以互换地装配。在发明了先进的尺寸测量设备和计算机之后,当今的批量选择装配在制造系统中起着至关重要的作用。在批量选择组装中,将测量一批配合零件的所有尺寸并将其存储在计算机中。不是组成选择性组,而是将每个部分分配给其最佳匹配部分。在这项工作中,通过将批量选择装配方法应用于多特性装配环境中,提出了一种基于粒子群优化的算法,以最大化装配效率,从而最大化制造系统效率。该算法通过一组实验问题数据集进行测试,发现在生产具有更高制造系统效率的解决方案中,其性能优于传统的选择性组装和顺序组装方法。

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