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Efficient hybrid group search optimizer for assembling printed circuit boards

机译:用于组装印刷电路板的高效混合组搜索优化器

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Assembly optimization of printed circuit boards (PCBs) has received considerable research attention because of efforts to improve productivity. Researchers have simplified complexities associated with PCB assembly; however, they have overlooked hardware constraints, such as pick-and-place restrictions and simultaneous pickup restrictions. In this study, a hybrid group search optimizer (HGSO) was proposed. Assembly optimization of PCBs for a multihead placement machine is segmented into three problems: the (1) auto nozzle changer (ANC) assembly problem, (2) nozzle setup problem, and (3) component pick-and-place sequence problem. The proposed HGSO proportionally applies a modified group search optimizer (MGSO), random-key integer programming, and assigned number of nozzles to an ANC to solve the component picking problem and minimize the number of nozzle changes, and the place order is treated as a traveling salesman problem. Nearest neighbor search is used to generate an initial place order, which is then improved using a 2-opt method, where chaos local search and a population manager improve efficiency and population diversity to minimize total assembly time. To evaluate the performance of the proposed HGSO, real-time PCB data from a plant were examined and compared with data obtained by an onsite engineer and from other related studies. The results revealed that the proposed HGSO has the lowest total assembly time, and it can be widely employed in general multihead placement machines.
机译:由于努力提高生产率,印刷电路板(PCB)的装配优化受到了广泛的研究关注。研究人员简化了与PCB组装相关的复杂性。但是,他们忽略了硬件限制,例如取放限制和同时取放限制。在这项研究中,提出了一种混合组搜索优化器(HGSO)。多头贴装机的PCB的装配优化分为三个问题:(1)自动换嘴器(ANC)装配问题,(2)喷嘴设置问题和(3)组件取放顺序问题。拟议的HGSO按比例地将改进的组搜索优化器(MGSO),随机键整数编程和分配的喷嘴数量应用于ANC,以解决组件拾取问题并最大程度地减少喷嘴更换数量,并将放置顺序视为旅行推销员问题。最近的邻居搜索用于生成初始放置顺序,然后使用2-opt方法对其进行改进,其中混乱的局部搜索和种群管理器可提高效率和种群多样性,以最大程度地减少总组装时间。为了评估拟议的HGSO的性能,检查了工厂的实时PCB数据,并将其与现场工程师和其他相关研究获得的数据进行了比较。结果表明,拟议的HGSO总装配时间最短,可广泛应用于一般的多头贴装机中。

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