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A continuous-time MILP model for short-term scheduling of make-and-pack production processes

机译:连续时间的MILP模型,用于包装制造过程的短期调度

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In process industries, make-and-pack production is used to produce food and beverages, chemicals, and metal products, among others. This type of production process allows the fabrication of a wide range of products in relatively small amounts using the same equipment. In this article, we consider a real-world production process (cf. Honkomp et al. 2000. The curse of reality - why process scheduling optimization problems are diffcult in practice. Computers & Chemical Engineering, 24, 323-328.) comprising sequence-dependent changeover times, multipurpose storage units with limited capacities, quarantine times, batch splitting, partial equipment connectivity, and transfer times. The planning problem consists of computing a production schedule such that a given demand of packed products is fulfilled, all technological constraints are satisfied, and the production makespan is minimised. None of the models in the literature covers all of the technological constraints that occur in such make-and-pack production processes. To close this gap, we develop an efficient mixed-integer linear programming model that is based on a continuous time domain and general-precedence variables. We propose novel types of symmetry-breaking constraints and a preprocessing procedure to improve the model performance. In an experimental analysis, we show that small- and moderate-sized instances can be solved to optimality within short CPU times.
机译:在加工业中,制造和包装生产用于生产食品和饮料,化学制品和金属产品等。这种类型的生产过程允许使用相同的设备以相对少量的方式制造各种产品。在本文中,我们考虑了一个包含序列的实际生产过程(参见Honkomp等人2000。现实的诅咒-为什么在实际中很难进行过程调度优化问题。计算机与化学工程,第24卷,第323-328页)。依赖的转换时间,容量有限的多功能存储单元,隔离时间,批次拆分,部分设备连接以及传输时间。计划问题包括计算生产计划,以便满足包装产品的给定需求,满足所有技术约束并最小化生产期。文献中没有任何模型能够涵盖这种包装制造过程中出现的所有技术约束。为了缩小这一差距,我们开发了一种基于连续时域和通用优先级变量的高效混合整数线性规划模型。我们提出了新型的对称突破约束和预处理程序,以提高模型的性能。在实验分析中,我们表明可以在较短的CPU时间内将小型和中型实例解决到最佳状态。

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