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Improving order-picking performance by converting a sequential zone-picking line into a zone-picking network

机译:通过将顺序的区域拣选线转换为区域拣选网络来提高订单拣选性能

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In this study, we address the problems caused by the fixed-sequence-route constraint in a sequential zone-picking line by proposing a new zone-picking network that offers routing flexibility to orders. Although routing flexibility enables the proposed zone-picking network to be free of the problems caused by the fixed-sequence-route constraint in a sequential zone-picking line, it incurs a new problem - tote dispatching. This problem and another problem - order selection - both affect the performance of the proposed zone-picking network. In this paper, we study both problems and propose different methods (ranging from simple rules to complicated rules) for them. Computer simulations are conducted to understand the Total System Time (TST) performance of every individual rule and the mutual effects between tote-dispatching rules and order-selection rules. A smaller TST means the system can complete picking tasks with less time. Two environmental factors - order size and system workload - are considered in simulations. The analysis of simulation results shows because of its routing flexibility the proposed zone-picking network outperforms the sequential zone-picking line regardless of whichever flexible-routing tote-dispatching rule is used. Furthermore, the dispatching rule that lets orders begin their next picking operations as early as possible and the order-selection rule that considers the number of zone-visitation coincidences between the selected order and the orders currently in the system and the picking time of the selected order are the best dispatching rule and order-selection rule respectively. Finally, the analysis of simulation results indicates both environmental factors significantly affect the system's order-picking performance. For the order-size factor, it is found a greater order size leads to a greater TST. For the system-workload factor, it is found underload and overload can both lead to the poor TST performance.
机译:在这项研究中,我们通过提出一种新的区域拣选网络来解决订单拣选路线中由固定序列路由约束所引起的问题,该新区域拣选网络具有一定的灵活性。尽管路由灵活性使拟议的区域选择网络摆脱了顺序区域选择线中的固定序列路由约束所引起的问题,但仍带来了一个新问题-手提袋分配。这个问题和另一个问题-订单选择-都会影响建议的区域挑选网络的性能。在本文中,我们研究了这两个问题,并针对它们提出了不同的方法(从简单规则到复杂规则)。进行计算机模拟以了解每个单独规则的总系统时间(TST)性能以及手提袋发送规则和订单选择规则之间的相互影响。较小的TST意味着系统可以用更少的时间完成拣货任务。仿真中考虑了两个环境因素-订单大小和系统工作量。对仿真结果的分析表明,由于其路由灵活性,无论使用哪种灵活路由手提袋调度规则,拟议的区域拣选网络都优于顺序区域拣选线。此外,让订单尽可能早地开始其下一个拣配操作的调度规则,以及考虑所选订单和系统中当前订单之间的区域访问符合次数以及所选拣选时间的订单选择规则订单分别是最佳调度规则和订单选择规则。最后,对仿真结果的分析表明,这两个环境因素都会严重影响系统的拣选性能。对于订单大小因子,发现更大的订单大小会导致更大的TST。对于系统工作负载因素,发现负载不足和过载都会导致TST性能下降。

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