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The effect of worker learning on manual order picking processes

机译:工人学习对手动拣货流程的影响

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Order picking is a time-intensive and costly logistics process as it involves a high amount of manual human work. Since order picking operations are repetitive by nature, it can be observed that human workers gain familiarity with the job over time, which implies that learning takes place. Even though learning may be an important source of efficiency improvements in companies, it has largely been neglected in planning order picking operations. Mathematical planning models of order picking that have been published earlier thus provide an incomplete picture of real-world order picking, which affects the quality of the planning outcome. To contribute to closing this research gap, this paper presents an approach to model worker learning in order picking. First, the results of a case study are presented that emphasize the importance of learning in manual order picking. Subsequently, an analytical model is developed to describe learning in order picking, which is then evaluated with the help of numerical examples. The results show that learning impacts order picking efficiency. In particular, the results imply that worker learning should be considered when planning order picking operations as it leads to a better predictability of order throughput times. In addition, the effects of learning are relevant for the allocation of available resources, such as the allocation of workers to different zones of the warehouse. The results of the numerical analysis indicate that it is beneficial to assign workers with the lowest learning rate in the workforce to the fastest moving zone to gain experience. (C) 2014 Elsevier B.V. All rights reserved.
机译:订单拣选是一项耗时且成本高昂的物流流程,因为它涉及大量的人工工作。由于订单拣货操作本质上是重复的,因此可以看出,随着时间的推移,人类工人逐渐熟悉该工作,这意味着学习已经发生。尽管学习可能是公司提高效率的重要来源,但在计划订单拣选操作中却很大程度上被忽略了。较早发布的订单拣选的数学计划模型因此提供了不完整的真实订单拣选情况,这影响了计划结果的质量。为了弥补这一研究空白,本文提出了一种在订单拣选中对工人学习进行建模的方法。首先,介绍了一个案例研究的结果,该结果强调了在手工订单拣选中学习的重要性。随后,开发了一个分析模型来描述按顺序拣选的学习,然后借助数值示例对其进行评估。结果表明,学习会影响订单拣选效率。尤其是,结果暗示在计划订单拣货操作时应考虑工人的学习,因为它可以更好地预测订单通过时间。另外,学习的效果与可用资源的分配有关,例如将工人分配到仓库的不同区域。数值分析的结果表明,将劳动力中学习率最低的工人分配到移动最快的区域以获取经验是有益的。 (C)2014 Elsevier B.V.保留所有权利。

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