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A Multi-Echelon Network Design in a Dual-Channel Reverse Supply Chain Considering Consumer Preference

机译:考虑消费者偏好的双通道反向供应链中的多梯级网络设计

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摘要

The rapid development of e-commerce technologies has encouraged collection centers to adopt online recycling channels in addition to their existing traditional (offline) recycling channels, such the idea of coexisting traditional and online recycling channels evolved a new concept of a dual-channel reverse supply chain (DRSC). The adoption of DRSC will make the system lose stability and fall into the trap of complexity. Further the consumer-related factors, such as consumer preference, service level, have also severely affected the system efficiency of DRSC. Therefore, it is necessary to help DRSCs to design their networks for maintaining competitiveness and profitability. This paper focuses on the issues of quantitative modelling for the network design of a general multi-echelon, dual-objective DRSC system. By incorporating consumer preference for the online recycling channel into the system, we investigate a mixed integer linear programming (MILP) model to design the DRSC network with uncertainty and the model is solved using the ε-constraint method to derive optimal Pareto solutions. Numerical results show that there exist positive correlations between consumer preference and total collective quantity, online recycling price and the system profits. The proposed model and solution method could assist recyclers in pricing and service decisions to achieve a balance solution for economic and environmental sustainability.
机译:电子商务技术的快速发展鼓励收集中心除了现有的传统(离线)回收渠道之外采用在线回收渠道,这些思想共存传统和在线回收渠道的想法演变了一种新的双通道反向供应的新概念链(DRSC)。通过DRSC的采用将使系统失去稳定性并落入复杂性的陷阱。此外,消费者相关的因素,如消费者偏好,服务水平,也严重影响了DRSC的系统效率。因此,有必要帮助DRSCS设计其网络以维持竞争力和盈利能力。本文重点介绍了一般多梯队,双目标DRSC系统的网络设计的定量建模问题。通过将在线回收信道的消费者偏好结合到系统中,我们调查混合整数线性编程(MILP)模型以设计DRSC网络,使用ε-crountaint方法来解决模型来衍生最佳的Pareto解决方案。数值结果表明,消费者偏好与总集体数量,在线回收价格与系统利润之间存在正相关。拟议的模型和解决方案方法可以帮助回收者定价和服务决策,以实现经济和环境可持续性的平衡解决方案。

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