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Integrated multi-objective process planning and flexible job shop scheduling considering precedence constraints

机译:考虑优先约束的集成多目标过程计划和灵活的车间计划

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Process planning and scheduling decisions are independently performed in a manufacturing system in traditional approaches. Integration of these two decisions provides significant benefits such as enhancing the productivity of manufacturing resources, lead time reduction, and decreasing total production costs. An approximately 10% improvement has been created in the small problems by this integration. In this research, a mathematical model is proposed to simultaneously make these decisions. Flexible job shop, as a prevalent configuration in production systems, is the supposed configuration in the study in which the feasible process plans are recognized based on the precedence relations between operations. Due to the NP-Hardness of the problem, a solving procedure based on the genetic algorithm is devised so that all the alternative process plans could be considered implicitly. Makespan, critical machine workload, and machines total workload are considered as objective function. These has been combined in a weighted-sum to form an objective function and solved in pareto space. A comparison of the exact solutions with the proposed algorithms (WGA & NSGA II) results confirms the efficiency and the effectiveness of the proposed algorithms in obtaining the final solutions.
机译:在传统方法中,过程计划和调度决策是在制造系统中独立执行的。这两个决策的整合提供了显着的好处,例如提高了制造资源的生产率,缩短了交货时间并降低了总生产成本。通过这种集成,已经在小问题上产生了大约10%的改进。在这项研究中,提出了一个数学模型来同时做出这些决定。灵活的作业车间,作为生产系统中的普遍配置,是研究中的假定配置,在该配置中,根据工序之间的优先关系识别出可行的工艺计划。由于问题的NP-Hardness,设计了基于遗传算法的求解程序,以便可以隐式考虑所有替代处理计划。制造时间,关键机器工作量和机器总工作量被视为目标函数。这些已被合并为一个加权和以形成目标函数,并在pareto空间中求解。将精确解与所提出的算法(WGA和NSGA II)的结果进行比较,证实了所提出算法在获得最终解中的效率和有效性。

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