首页> 外文期刊>Journal of Cleaner Production >Sustainable multi-period reverse logistics network design and planning under uncertainty utilizing conditional value at risk (CVaR) for recycling construction and demolition waste
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Sustainable multi-period reverse logistics network design and planning under uncertainty utilizing conditional value at risk (CVaR) for recycling construction and demolition waste

机译:利用条件风险价值(CVaR)进行不确定的可持续多周期逆向物流网络设计和规划,以回收建筑和拆除废物

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摘要

Decreasing the environmental effect and increasing the social effect as well as the profit of organizations has gained a considerable attention in supply chain network problems. Construction and demolition wastes (C&D wastes) management poses serious challenges to the government and private sector in terms of the environmental damages and potential gains due to recycling these types of wastes. On the other hand, considering the triple bottom line in reverse logistics network design problems simultaneously is an issue that has gained little attention in previous studies. Therefore in this research we propose a multi-period multi-objective mixed integer linear programming to design and plan a network of reverse logistics under uncertainty for recycling C&D wastes in which the objectives are represented as profit and social impact maximization and environmental effect minimization. In this paper the network design problem with stochastic demand of recycled products and rate on investment is regarded. In order to cope with the uncertainty in the model, we consider a risk averse two-stage stochastic programming, where we specify the conditional value at risk (CVaR) as the risk measure. We also apply off-site and on site separation as two common method for segregating C&D wastes. Appropriate numerical is conducted to learn the effects of crucial parameters on the model and gain managerial insights as well. (C) 2017 Elsevier Ltd. All rights reserved.
机译:减少环境影响,增加社会影响以及组织的利润已在供应链网络问题中引起了广泛关注。建筑和拆迁废物(拆建废物)的管理对政府和私营部门构成了严峻的挑战,因为这些废物的循环利用对环境造成破坏并带来潜在收益。另一方面,同时考虑逆向物流网络设计问题中的三重底线问题在以前的研究中很少引起注意。因此,在本研究中,我们提出了一种多周期多目标混合整数线性规划方法,以设计和规划不确定性下的逆向物流网络,以回收C&D废物,其目标分别是利润和社会影响最大化以及环境影响最小化。本文考虑了网络设计问题,即再生产品的随机需求和投资率。为了应对模型中的不确定性,我们考虑了避免风险的两阶段随机规划,在此我们将风险条件值(CVaR)指定为风险度量。我们还采用场外和场内分离作为隔离拆建废物的两种常用方法。进行适当的数值计算以了解关键参数对模型的影响并获得管理上的见解。 (C)2017 Elsevier Ltd.保留所有权利。

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