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Optimum loading of machines in a flexible manufacturing system using a mixed-integer linear mathematical programming model and genetic algorithm

机译:使用混合整数线性数学编程模型和遗传算法在柔性制造系统中优化机器装载

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摘要

Machine loading problem in a flexible manufacturing system (FMS) encompasses various types of flexibility aspects pertaining to part selection and operation assignments. The evolution of flexible manufacturing systems offers great potential for increasing flexibility by ensuring both cost-effectiveness and customized manufacturing at the same time. This paper proposes a linear mathematical programming model with both continuous and zero-one variables for job selection and operation allocation problems in an FMS to maximize profitability and utilization of system. The proposed model assigns operations to different machines considering capacity of machines, batch-sizes, processing time of operations, machine costs, tool requirements, and capacity of tool magazine. A genetic algorithm (GA) is then proposed to solve the formulated problem. Performance of the proposed GA is evaluated based on some benchmark problems adopted from the literature. A statistical test is conducted which implies that the proposed algorithm is robust in finding near-optimal solutions. Comparison of the results with those published in the literature indicates supremacy of the solutions obtained by the proposed algorithm for attempted model.
机译:柔性制造系统(FMS)中的机器装载问题包括与零件选择和操作分配有关的各种类型的灵活性方面。柔性制造系统的发展通过同时确保成本效益和定制制造,为提高灵活性提供了巨大潜力。本文提出了一个具有连续变量和零变量的线性数学规划模型,用于FMS中的工作选择和操作分配问题,以最大程度地提高系统的获利能力和利用率。所提出的模型考虑到机器的容量,批量大小,操作的处理时间,机器成本,工具要求和工具库的容量,将操作分配给不同的机器。然后提出了一种遗传算法(GA)来解决所提出的问题。建议的GA的性能是根据文献中采用的一些基准问题进行评估的。进行了统计测试,这表明所提出的算法在寻找近似最优解方面具有鲁棒性。将结果与文献中发表的结果进行比较表明,所提出的用于尝试模型的算法所获得的解决方案具有绝对优势。

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