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Optimal Design of Large-Scale Supply Chain with Multi-Echelon Inventory and Risk Pooling under Demand Uncertainty

机译:大型供应链具有多梯度库存和风险汇集的大型供应链的最佳设计不确定性

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We address the optimal design of a multi-echelon supply chain and the associated inventory systems in the presence of uncertain customer demands. By using the guaranteed service approach to model the multi-echelon stochastic inventory system, we develop an optimization model for simultaneously optimizing the transportation, inventory and network structure of a multi-echelon supply chain. We formulate this problem as an MINLP with a nonconvex objective function including bilinear, trilinear and square root terms. By exploiting the properties of the basic model, we reformulate the problem as a separable concave minimization program. A spatial decomposition algorithm based on Lagrangean relaxation and piecewise linear approximation is proposed to obtain near global optimal solutions with reasonable computational expense. Examples for industrial gas supply chains with up to 5 plants, 50 potential distribution centers and 100 markets are presented.
机译:我们在不确定客户需求存在下解决了多梯队供应链和相关库存系统的最佳设计。通过使用保证的服务方法来模拟多梯随机库存系统,我们开发了一种优化模型,可同时优化多梯队供应链的运输,库存和网络结构。我们将此问题作为MINLP与非透露目标函数制定,包括双线性,三线性和平方根术语。通过利用基本模型的属性,我们将问题重构为可分离的凹项最小化程序。提出了一种基于拉格朗日弛豫和分段线性近似的空间分解算法,以获得具有合理计算费用的全局最优解决方案。介绍了高达5株植物,50个潜在分布中心和100个市场的工业气体供应链的实例。

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    《ESCAPE-19》|2009年||共6页
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