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Stochastic modeling of parallel process flows in intra-logistics systems: Applications in container terminals and compact storage systems

机译:物流系统内部平行过程流动的随机造型:集装箱码头和紧凑型存储系统中的应用

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摘要

Many intra-logistics systems, such as automated container terminals, distribution warehouses, and cross-docks, observe parallel process flows, which involve simultaneous (parallel) operations of independent resources while processing a job. When independent resources work simultaneously to process a common job, the effective service requirement of the job is difficult to estimate. For modeling simplicity, researchers tend to assume sequential operations of the resources. In this paper, we propose an efficient modeling approach for parallel process flows using two-phase servers. We develop a closed queuing network model to estimate system performance measures. Existing solution methods can evaluate the performance of closed queuing networks that consist of two-phase servers with exponential service times only. To solve closed queuing networks with general two-phase servers, we propose new solution methods: an approximate mean value analysis and a network aggregation dis-aggregation approach. We derive insights on the accuracy of the solution methods from numerical experiments. Although both solution methods are quite accurate in estimating performance measures, the network aggregation disaggregation approach consistently performs best. We illustrate the proposed modeling approach for two intra-logistic systems: a container terminal with automated guided vehicles and a shuttle-based compact storage system. Results show that approximating the simultaneous operations as sequential operations underestimates the container terminal throughput on average by 28% and at maximum up to 47%. Similarly, considering sequential operations of the resources in the compact storage system results in an underestimation of the throughput capacity up to 9%. (C) 2020 Elsevier B.V. All rights reserved.
机译:许多内部物流系统,如自动化集装箱码头、配送仓库和跨码头,遵循并行流程,这涉及到在处理作业时独立资源的同时(并行)操作。当独立的资源同时处理一个共同的工作时,工作的有效服务需求很难估计。为了简化建模,研究人员倾向于假设资源的顺序操作。在本文中,我们提出了一种使用两阶段服务器的并行流程建模方法。我们开发了一个封闭排队网络模型来评估系统性能指标。现有的求解方法可以评估由服务时间仅为指数的两阶段服务器组成的封闭排队网络的性能。为了求解具有一般两相服务器的封闭排队网络,我们提出了新的求解方法:近似平均值分析和网络聚合-解聚方法。我们从数值实验中获得了关于求解方法准确性的见解。虽然这两种解决方案方法在估计性能指标时都非常准确,但网络聚合-分解方法始终表现最好。我们举例说明了两个内部物流系统的拟议建模方法:带有自动引导车辆的集装箱码头和基于穿梭机的紧凑型存储系统。结果表明,将同时作业近似为连续作业平均低估了集装箱码头吞吐量28%,最高低估了47%。同样,考虑到紧凑型存储系统中资源的顺序操作,会导致对吞吐量的低估高达9%。(C) 2020爱思唯尔B.V.版权所有。

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