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首页> 外文期刊>International Journal of Production Research >Optimising lot sizing with nonlinear production rates in a multi-product multi-machine environment
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Optimising lot sizing with nonlinear production rates in a multi-product multi-machine environment

机译:在多产品多机器环境中以非线性生产率优化批量

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摘要

In a variety of discrete manufacturing environments, it is common to experience a nonlinear production rate. In particular, our interest is in the case of an increasing production rate, where learning creates efficiencies. This leads to greater output per unit time as the process continues. However, the advantages of an increasing production rate may be offset by other factors. For examples, JIT policies typically lead to smaller lot sizes, where the value of an increasing production rate is largely lost. We develop a general model that balances the impact of various competing effects. Our research focuses on determining lot sizes that satisfy demand requirements while minimising production and holding costs. We extend our prior work by developing a multi-product, multi-machine method for modelling and solving this class of production problems. The solution method is demonstrated using the production function from the PR#2 grinding process for a production plant in Carlisle, PA. The solution heuristic provides solution times that are on average only 0.22 to 0.55% above optimum as the solution parameters are varied and the ratio of heuristic solution times to optimal solution times varies from 18.16 to 14.15%.
机译:在各种离散的制造环境中,通常会经历非线性的生产率。尤其是,我们的兴趣在于提高生产率,从而提高学习效率。随着过程的继续,这将导致每单位时间更大的输出。但是,提高生产率的优势可能会被其他因素所抵消。例如,准时制(JIT)策略通常导致批量较小,而提高生产率的价值在很大程度上丧失了。我们开发了一个通用模型来平衡各种竞争效应的影响。我们的研究重点是确定满足需求要求的批量,同时最大程度地减少生产和持有成本。我们通过开发用于建模和解决此类生产问题的多产品,多机器方法来扩展先前的工作。使用宾夕法尼亚州卡莱尔市一家生产工厂的PR#2研磨工艺的生产函数演示了该解决方法。随着求解参数的变化,求解启发式算法提供的求解时间平均仅比最优值高出0.22%至0.55%,并且启发式求解时间与最优求解时间的比率在18.16%至14.15%之间。

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