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Fuzzy Optimisation Approach to Supply Chain Distribution Network for Product Value Recovery

机译:产品价值恢复供应链分配网络的模糊优化方法

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Efficient integration of forward and reverse logistics network is significant for optimising the economic and ecological value of a closed-loop supply chain network (CLSCN). There is also a high measure of uncertainty involved in such networks and must be handled appropriately in the decisionmaking process. In this study, we propose a fuzzy optimisation model for improving a CLSCN for handling end-of-life (EOL) and end-of-use (EOU) products. Manufacturer uses fabricated components obtained from the recovery processes and procures new components from external suppliers to assemble new products. Suppliers are evaluated using ANP and are assigned weights. Environmental concerns are also addressed by the model by ensuring that the carbon emission due to transportation does not exceed the permissible carbon cap. To achieve this, hybrid distribution-cum-collection centres (HDC) are grouped into optimal clusters. Products are carried along optimal routes within these clusters using travelling salesman problem (TSP). A fuzzy multi-objective mixed integer linear programming model is proposed which aims at minimising cost of the network and maximising weights of suppliers. A case study of printers is considered to validate the model.
机译:正向和逆向物流网络的高效整合是优化闭环供应链网络(CLSCN)的经济价值和生态价值显著。还有涉及在这种网络中的不确定性的度量高并且必须在决策过程适当处理。在这项研究中,我们提出了一个模糊优化模型对于提高处理结束生命(EOL)和最终的使用(EOU)产品CLSCN。制造商使用制造从回收过程中获得的组分和采购从外部供应商的新组件来组装新产品。供应商正在使用ANP和求值的分配的权重。环境问题是通过确保由于交通的碳排放量不超过允许的碳排放总量也谈到了模型。要做到这一点,混合分销暨收集中心(HDC)分为最佳集群。产品采用沿旅行商问题(TSP)这些集群内的最佳路径进行。线性规划模型的模糊多目标混合整数在最小化网络的成本和供应商最大化的权重,提出了其目的。打印机的个案研究被认为是验证模型。

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