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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >An Integrated Production-Distribution Planning Problem under Demand and Production Capacity Uncertainties: New Formulation and Case Study
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An Integrated Production-Distribution Planning Problem under Demand and Production Capacity Uncertainties: New Formulation and Case Study

机译:需求与产能不确定性下的产销一体化计划问题:新表述与案例研究

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摘要

In this study, we propose to solve a biobjective tactical integrated production-distribution planning problem for a multisite, multiperiod, multiproduct, sea-air intermodal supply chain network under uncertainties. Two random parameters are considered simultaneously: product replenishment orders and production capacity, which are modelled via a finite set of scenarios, using a two-stage stochastic approach. A corresponding mathematical model is developed, coded, and solved using the LINGO 18.0 software optimisation tool. This model aims to simultaneously minimise the total costs of production in both regular and overtime, inventory, distribution, and backordering activities and maximise the customer satisfaction level over the tactical planning horizon. The AUGMECON technique is applied to handle with the multiobjective optimisation. The applicability and the performance of the proposed model are tested through a real-life case study inspired from a medium-sized Tunisian textile and apparel company. Sensitivity analysis on stochastic parameters and managerial insights for the studied supply chain network are argued based on the empirical findings.
机译:本研究提出一种不确定性下多地点、多时段、多产品、海空联运供应链网络的双目标战术一体化产销计划问题。同时考虑两个随机参数:产品补货订单和生产能力,使用两阶段随机方法通过一组有限的场景进行建模。使用 LINGO 18.0 软件优化工具开发、编码和求解相应的数学模型。该模型旨在同时最大限度地降低常规和加班、库存、分销和延期交货活动的总生产成本,并在战术规划范围内最大限度地提高客户满意度。AUGMECON技术用于处理多目标优化。通过突尼斯一家中型纺织和服装公司的真实案例研究,测试了所提出模型的适用性和性能。基于实证研究结果,对所研究的供应链网络的随机参数和管理见解进行了敏感性分析。

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