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Designing an eco-efficient supply chain network considering carbon trade and trade-credit: A robust fuzzy optimization approach

机译:考虑碳贸易和贸易信贷的生态高效供应链网络:强大的模糊优化方法

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摘要

Classical supply chain networks primarily focus on economic optimization by determining the optimal supply chain configuration in a chaotic business environment. Owing to rapidly increasing greenhouse gas emissions, there has been immense pressure from society to design eco-efficient supply chain networks to reduce the carbon emissions generated from supply chain activities at a reasonable cost. This study addresses the eco-efficient supply chain network design problem considering carbon trading and trade credit from suppliers to maximize the total supply chain profit in both the physical and carbon markets. The problem determines the optimal number, location, and capacity of facilities (e.g., production and distribution centers), optimal product flow among entities in the network, optimal product-selling price, and optimal economic order quantity for suppliers under different trade credit schemes. A robust fuzzy optimization model based on the integration of robust optimization and fuzzy programming was applied to address the uncertainties in demand and relevant costs. A case study of a Taiwanese steel firm was conducted to demonstrate the efficacy and efficiency of the proposed model. The results show that the proposed model improves the total supply chain profit, including the profits from physical and carbon markets, by around 3%, and reduces the computation time by approximately 72.44 %, compared to scenario-based robust stochastic programming. Our findings also show that the optimal configuration of the supply chain network is sensitive to different scenarios of carbon trade, and the selection of suppliers is affected by the trade credit policy.
机译:古典供应链网络主要通过确定混沌商业环境中的最优供应链配置来专注于经济优化。由于温室气体排放迅速增加,社会的巨大压力设计了生态有效的供应链网络,以减少以合理的成本为由供应链活动产生的碳排放量。本研究解决了考虑供应商的碳交易和贸易信贷的生态有效的供应链网络设计问题,以最大限度地提高物理和碳市场的总供应链利润。问题确定了设施的最佳数量,位置和能力(例如,生产和分销中心),网络中的实体之间的最佳产品流,最佳的产品销售价格和不同贸易信用计划下供应商的最佳经济秩序数量。应用了一种基于稳健优化和模糊编程集成的强大模糊优化模型来解决需求的不确定性和相关成本。对台湾钢铁公司进行了一个案例研究,以证明所提出的模型的功效和效率。结果表明,与基于方案的强大随机编程相比,拟议的模型提高了总供应链利润,包括来自物理和碳市场的利润约为3%,并将计算时间减少约72.44%。我们的研究结果还表明,供应链网络的最佳配置对不同的碳交易场景敏感,供应商的选择受贸易信贷政策的影响。

著录项

  • 来源
    《Computers & Industrial Engineering》 |2021年第10期|107595.1-107595.14|共14页
  • 作者单位

    Department of Industrial Management National Taiwan University of Science and Technology Taipei Taiwan Artificial Intelligence for Operations Management Research Center National Taiwan University of Science and Technology Taipei Taiwan Department of Business Administration Asia University Taichung Taiwan Department of Medical Research China Medical University Hospital China Medical University Taichung Taiwan;

    Department of Industrial Management National Taiwan University of Science and Technology Taipei Taiwan Universitas Indonesia Department of Industrial Engineering Depok Indonesia;

    Department of Industrial Management National Taiwan University of Science and Technology Taipei Taiwan Artificial Intelligence for Operations Management Research Center National Taiwan University of Science and Technology Taipei Taiwan;

    Universitas Indonesia Department of Industrial Engineering Depok Indonesia;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Supply Chain Network Design; Eco-efficiency; Carbon Trade; Trade-Credit; Robust Fuzzy Optimization; Stochastic Programming;

    机译:供应链网络设计;生态效率;碳贸易;贸易信贷;强大的模糊优化;随机编程;

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