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Modeling framework and computational algorithm for hedging against uncertainty in sustainable supply chain design using functional-unit-based life cycle optimization

机译:使用基于功能单元的生命周期优化对冲可持续供应链设计中不确定性的建模框架和计算算法

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In this work, we address the life cycle economic and environmental optimization of a supply chain network considering both design and operational decisions under uncertainty. A modeling framework is proposed that integrates the functional-unit-based life cycle optimization methodology and the two-stage stochastic programming approach for sustainable supply chain optimization under uncertainty. We develop a stochastic mixed-integer linear fractional programming (SMILFP) model to tackle multiple uncertainties regarding feedstock supply and product demand. To address the computational challenge of solving the resulting large-scale SMILFP problems, an efficient solution algorithm is developed that takes advantage of the efficiency of parametric algorithm and the decomposition-based multi-cut L-shaped method. We present a case study based on a spatially explicit model for the optimal design and operations of a county-level hydrocarbon biofuel supply chain in Illinois to demonstrate the applicability of the proposed modeling framework and the efficiency of the solution algorithm.
机译:在这项工作中,我们考虑了不确定性下的设计和运营决策,探讨了供应链网络的生命周期经济和环境优化。提出了一个建模框架,该框架将基于功能单元的生命周期优化方法学和两阶段随机规划方法相集成,以实现不确定性下的可持续供应链优化。我们开发了一种随机混合整数线性分数规划(SMILFP)模型,以解决有关原料供应和产品需求的多种不确定性。为了解决解决由此产生的大规模SMILFP问题的计算难题,开发了一种有效的求解算法,该算法利用了参数算法和基于分解的多割L形方法的效率。我们提出一个基于空间显式模型的案例研究,用于伊利诺伊州县级碳氢化合物生物燃料供应链的优化设计和运营,以证明所提出的建模框架的适用性和求解算法的效率。

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