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Machining process sequencing with fuzzy expert system and genetic algorithms

机译:基于模糊专家系统和遗传算法的加工过程排序

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摘要

Traditional process planning systems are usually established in a deterministic framework that can only deal with precise information. However, in a practical manufacturing environment, decision making frequently involves uncertain and imprecise information. This paper describes a fuzzy approach for solving the process selection and sequencing problem under uncertainty. The proposed approach comprises a two-stage process for machining process selection and sequencing. The two stages are called intra-feature planning and inter-feature planning, respectively. According to the feature precedence relationship of a machined part, the intra-feature planning module generates a local optimal operation sequence for each feature element. This is based on a fuzzy expert system incorporated with genetic algorithms for machining cost optimization according to the cost-tolerance relationship. Manufacturing resources such as machines, tools, and fixtures are allocated to each selected operation to form an Operation-Machine-Tool (OMT) unit in the manufacturing resources allocation module. Finally, inter-feature planning generates a global OMT sequence. A genetic algorithm with fuzzy numbers and fuzzy arithmetic is developed to solve this global sequencing problem.
机译:传统的过程计划系统通常是在只能处理精确信息的确定性框架中建立的。但是,在实际的制造环境中,决策过程经常涉及不确定和不精确的信息。本文介绍了一种模糊方法,用于解决不确定性条件下的工艺选择和排序问题。所提出的方法包括用于加工过程选择和排序的两阶段过程。这两个阶段分别称为功能内计划和功能间计划。根据加工零件的特征优先关系,特征内计划模块为每个特征元素生成局部最优操作序列。这是基于模糊专家系统的,该系统结合了遗传算法,用于根据成本-公差关系优化加工成本。诸如机器,工具和固定装置之类的制造资源被分配给每个选定的工序,以在制造资源分配模块中形成一个操作机器工具(OMT)单元。最后,功能间规划会生成全局OMT序列。提出了一种具有模糊数和模糊算法的遗传算法来解决该全局排序问题。

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