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Application of genetic algorithm to computer-aided process planning in distributed manufacturing environments

机译:遗传算法在分布式制造环境中的计算机辅助工艺计划中的应用

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摘要

In a distributed manufacturing environment, factories possessing various machines and tools at different geographical locations are often combined to achieve the highest production efficiency. When jobs requiring several operations are received, feasible process plans are produced by those factories available. These process plans may vary due to different resource constraints. Therefore, obtaining an optimal or near-optimal process plan becomes important. This paper presents a genetic algorithm (GA), which, according to prescribed criteria such as minimizing processing time, could swiftly search for the optimal process plan for a single manufacturing system as well as distributed manufacturing systems. By applying the GA, the computer-aided process planning (CAPP) system can generate optimal or near-optimal process plans based on the criterion chosen. Case studies are included to demonstrate the feasibility and robustness of the approach. The main contribution of this work lies with the application of GA to CAPP in both a single and distributed manufacturing system. It is shown from the case study that the approach is comparative or better than the conventional single-factory CAPP.
机译:在分布式制造环境中,通常会将在不同地理位置拥有各种机器和工具的工厂合并在一起,以实现最高的生产效率。当收到需要多次操作的工作时,那些可用的工厂就会制定可行的工艺计划。这些过程计划可能会因资源限制而有所不同。因此,获得最佳或接近最佳的工艺计划变得很重要。本文提出了一种遗传算法(GA),该遗传算法可以根据规定的标准(例如,最大限度地减少处理时间),迅速为单个制造系统以及分布式制造系统寻找最佳工艺计划。通过应用GA,计算机辅助过程计划(CAPP)系统可以根据所选标准生成最佳或接近最佳的过程计划。案例研究包括以证明该方法的可行性和鲁棒性。这项工作的主要贡献在于将GA应用于单一制造系统和分布式制造系统中的CAPP。从案例研究中可以看出,该方法比常规的单工厂CAPP更具可比性或更好。

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