多头龙门安装机零件放置的新模型及混合遗传算法

Xuan Du, Z. Li
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引用次数: 3

摘要

分析了多头龙门安装机的工作原理和安装过程。在工程分析的基础上,将装配过程的优化问题分解为组件分组、组件组拾取和组件组放置问题,建立了MHGM的集成优化模型,以臂的最小位移为目标。考虑了零件尺寸、喷嘴的变化以及不同零件在槽内的布置策略。将启发式算法与遗传算法相结合,采用混合遗传算法对布局过程进行优化。在单个染色体中,馈线索引和槽索引描述了各组分类型在槽中的排列顺序和位置。该算法采用改进的顺序交叉、自适应变异和局部搜索,并包含一个并行结构。同时优化了零件放置顺序和进料器布置,提高了装配效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
New model and hybrid genetic algorithm for component placement of multi-head gantry mount machine
The mechanism and placement process of multi-head gantry mount machine (MHGM) is analyzed. Based on the engineering analysis, the optimization problem of placement process is decomposed to component grouping, component group pickup and component group placement problems, an integrated optimization model of MHGM is formulated, the minimum displacement of arm is objective. The component size, nozzle change and different component arrangement strategy in slots is considered. Combined with heuristic method and genetic algorithm (GA), a hybrid GA (HGA) is adopted to optimize the placement process. In the individual chromosome, the feeder index and slot index describe the arrangement sequence and position of component types in the slot. The HGA use improved order crossover, adaptive mutation and local search and contains a parallel structure. The component placement sequence and the feeder arrangement are optimized simultaneously to improve the assembly efficiency.
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