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A carbon-constrained stochastic model for eco-efficient reverse logistics network design under environmental regulations in the CRD industry

机译:CRD行业环境法规下生态约束逆向物流网络设计的碳约束随机模型

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This paper addresses a two-stage stochastic model for eco-efficient reverse logistics network design (RLND). The goal of this optimization model is to maximize the expected profit and minimize landfilling activities to give more incentive for materials recycling. The model considers a source separation option that allows the separation of the collected materials at an early stage of the reverse logistics channel. The quantity of waste generated and the recycling rates at the collection centers are uncertain due to the variable quality of the collected batches. We solved the model using the combination of a Sampling Average Approximation procedure and the epsilon-constraint method. An application is illustrated through the case study of wood waste recycling from the construction, renovation, and demolition (CRD) industry in the province of Quebec in Canada. This research reveals that the source separation strategy provides better control of the impact of uncertainties, not only for the economic performance but also from an environmental perspective. The results highlight the necessity to evaluate the interaction between environmental policies to avoid conflicting objectives. Finally, the case study demonstrates the complexity of the reverse logistics network in the CRD industry and the challenge to achieve ecoefficiency under uncertainty. (C) 2019 Elsevier Ltd. All rights reserved.
机译:本文提出了一种用于生态高效的逆向物流网络设计(RLND)的两阶段随机模型。该优化模型的目标是最大程度地提高预期利润并减少填埋活动,从而为材料回收提供更多动力。该模型考虑了一种源分离选项,该选项允许在反向物流渠道的早期阶段对收集的物料进行分离。由于所收集批次的质量各不相同,因此在收集中心产生的废物数量和回收率尚不确定。我们使用采样平均逼近过程和epsilon约束方法的组合来求解模型。通过加拿大魁北克省建筑,装修和拆除(CRD)行业的木材废料回收利用案例研究,说明了一种应用。这项研究表明,源头分离策略不仅可以更好地控制不确定性的影响,不仅可以改善经济绩效,而且可以从环境角度出发。结果强调有必要评估环境政策之间的相互作用,以避免目标冲突。最后,案例研究证明了CRD行业逆向物流网络的复杂性以及不确定性下实现生态效率的挑战。 (C)2019 Elsevier Ltd.保留所有权利。

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