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Job shop control under influence of chaos phenomena

机译:混乱现象影响下的车间控制

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摘要

Efficient short-term production control depends on the ability to forecast future behavior of a job shop when it is loaded according to a particular schedule. A simulation of the job shop process based on a well-suited job shop model can be used to evaluate that schedule according to such goals as low in-process inventory, high utilization of workers and facilities, and low tardiness so that some optimization by modifying the schedule can be performed. A dedicated class of augmented Petri nets is introduced as a notation for microscopic deterministic job shop models which are well suited for short-term production control, including job shop scheduling. It is shown how these Petri nets can be automatically transformed into CPM nets using occurrence structures. These CPM nets represent the job shop schedule. In contrast to Gantt charts they are not restricted to the information about the temporal ordering of events of the shop floor, but also contain the full causal structure of the job shop process as well as assertions about the critical path. An attempt is made to determine whether there is a fundamental limit of deterministic simulation of manufacturing facilities emerging out of chaos phenomena due to incomplete specification of deterministic models.
机译:有效的短期生产控制取决于根据特定时间表加载作业车间时预测其将来行为的能力。基于合适的车间模型的车间过程仿真可用于根据以下目标评估进度:过程中库存少,工人和设施的利用率高,拖延率低,以便通过修改来进行一些优化可以执行时间表。引入了专用的增强Petri网类别,作为微观确定性作业车间模型的一种表示法,该模型非常适合于短期生产控制,包括作业车间调度。展示了如何使用出现结构将这些Petri网自动转换为CPM网。这些每千次展示费用网络代表了车间作业时间表。与甘特图相反,它们不仅限于车间事件的时间顺序信息,而且还包含车间过程的完整因果结构以及关于关键路径的断言。试图确定由于确定性模型的规范不完整而导致的从混乱现象中出现的制造设备的确定性模拟是否存在基本限制。

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