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A GA-based solution approach for balancing printed circuit board assembly lines

机译:基于GA的解决方案,用于平衡印刷电路板装配线

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Printed circuit board (PCB) assembly lines consist of a number of different machines for mounting electronic components onto PCBs. While high-speed placement machines are employed to assemble standard components, so-called fine-pitch placement machines are used to mount complex electronic components with high precision and by use of specific nozzles. In this paper, we investigate a typical mass production environment where a single type of PCB is assembled in a line comprising high-speed as well as high-precision placement machines. The PCB assembly line balancing problem consists of assigning component feeders, each holding a specific electronic component type, and the corresponding placement operations to machines in the line so as to minimize the assembly cycle time. To solve this problem, a two-stage solution procedure based on genetic algorithm (GA) is proposed. In the first stage, component feeders are assigned to the placement machines with the objective of balancing the workload within the assembly line. A number of candidate solutions are then transmitted to the second stage, where specific machine optimization algorithms are applied to determine the feeder-slot assignment in the component magazine of the machines and the placement sequence of the various components. As a result, fine-tuned placement operation times are achieved which reflect the individual operation mode and the actual component setup of the placement machines. Finally, from the candidate solutions the one which minimizes the actual PCB assembly time is selected.
机译:印刷电路板(PCB)装配线由许多用于将电子组件安装到PCB上的机器组成。虽然使用高速贴装机来组装标准组件,但所谓的细间距贴装机却用于通过特定的喷嘴高精度地安装复杂的电子组件。在本文中,我们研究了一种典型的批量生产环境,其中将一种类型的PCB组装在一条由高速以及高精度贴片机组成的生产线中。 PCB流水线平衡问题包括分配元件进给器(每个进给器具有特定的电子元件类型)以及对生产线中的机器进行相应的放置操作,以最大程度地缩短装配周期。为了解决这个问题,提出了一种基于遗传算法的两阶段求解程序。在第一阶段,将组件进料器分配给贴片机,目的是平衡装配线内的工作量。然后将许多候选解决方案传输到第二阶段,在第二阶段中,将使用特定的机器优化算法来确定机器的组件盒中的进纸槽分配以及各个组件的放置顺序。结果,实现了微调的贴装操作时间,该时间反映了贴装机的各个操作模式和实际组件设置。最后,从候选解决方案中选择一种可以最大程度减少实际PCB组装时间的解决方案。

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