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Just-in-Time Smoothing Through Batching

机译:通过批处理及时进行平滑

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This paper presents two methods to solve the production smoothing problem in mixed-model just-in-time (JIT) systems with large setup and processing time variability between different models the systems produce. The problem is motivated by production planning at a leading U.S. automotive pressure hose manufacturer. One method finds all Pareto-optimal solutions that minimize total production rate variation of models and work in process (WIP), and maximize system utilization and responsiveness. These Pareto-optimal solutions are found efficiently in polynomial time with respect to total demand by an algorithm proposed in the paper. The other method relies on Daniel Webster's method of apportionment for production smoothing, which produces periodic, uniform, and reflective production sequences that can improve operations management of the JIT systems. Finally, the paper presents the results of a computational experiment with the two methods.
机译:本文提出了两种方法来解决混合模型即时(JIT)系统中的生产平滑问题,该系统的设置和处理时间在系统生成的不同模型之间具有较大的可变性。该问题是由美国一家领先的汽车压力软管制造商的生产计划引起的。一种方法可以找到所有帕累托最优解决方案,这些解决方案可以最大程度地减少模型和在制品(WIP)的总生产率变化,并最大化系统利用率和响应能力。通过本文提出的算法,可以在多项式时间内相对于总需求有效地找到这些Pareto最优解。另一种方法依赖于Daniel Webster的生产平滑分配方法,该方法可以产生周期性,统一和反射性的生产顺序,从而可以改善JIT系统的运营管理。最后,本文介绍了两种方法的计算实验结果。

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