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A Stochastic Closed-Loop Supply Chain Network Optimization Problem Considering Flexible Network Capacity

机译:考虑灵活网络容量的随机闭环供应链网络优化问题

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Nowadays, due to the concern of environmental challenges, global warming and climate change, companies across the globe have increasingly focused on the sustainable operations and management of their supply chains. Closed-loop supply chain (CLSC) is a new concept and practice, which combines both traditional forward supply chain and reverse logistics in order to simultaneously maximize the utilization of resource and minimize the generation of waste. In this paper, a stochastic CLSC network optimization problem with capacity flexibility is investigated. The proposed optimization model is able to appropriately handle the uncertainties from different sources, and the network configuration and decisions are adjusted by the capacity flexibility under different scenarios. The sample average approximation (SAA) method is used to solve the stochastic optimization problem. The model is validated by a numerical experiment and the result has revealed that the quality and consistency of the decision-making can be dramatically improved by modelling the capacity flexibility.
机译:如今,由于对环境挑战的关注,全球变暖和气候变化,全球各地的公司越来越关注其供应链的可持续运营和管理。闭环供应链(CLSC)是一种新的概念和实践,其结合了传统的前进供应链和反向物流,以便同时最大限度地利用资源,并最大限度地减少浪费的产生。本文研究了具有容量灵活性的随机CLSC网络优化问题。所提出的优化模型能够适当地处理来自不同来源的不确定性,并且通过不同场景下的容量灵活性来调整网络配置和决策。样本平均近似(SAA)方法用于解决随机优化问题。该模型通过数值实验验证,结果表明,通过建模容量灵活性,可以大大提高决策的质量和一致性。

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