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A hybrid approach for performance evaluation and optimized selection of recoverable end-of-life products in the reverse supply chain

机译:用于反向供应链中性能评估和可回收寿命终止产品优化选择的混合方法

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摘要

Performance evaluation and selection of end-of-life products have emerged as crucial issues for firms looking to adopt a product recovery strategy to achieve environmental responsibility while still meeting profit goals within the reverse supply chain. However, there is still a lack of a comprehensive methodology to address the issues because of the variety of decision factors involved and the inherent uncertainties associated with them. This research proposes and investigates a multiphase hybrid approach to identify the recoverable products that best meet the criteria set (such as technical feasibility, economic benefit, and environmental effect). The proposed method simultaneously considers multiple and conflicting goals, practical constraints, and information uncertainty. First fuzzy logic and probability theory are utilized to estimate the quality condition of used products and subsequently conduct the cost-benefit analysis based on the product life-cycle information. Then, the modified preference ranking organization method for enrichment evaluations is used as a multi-criteria decision-making tool to quantify and aggregate the linguistic evaluation items into recovery preference factors. Further, all the qualitative and quantitative data are incorporated in a goal programming model to achieve a compromise and satisfied solution. We present a numerical example to illustrate the effectiveness and superiority of the proposed approach. The results indicate that the proposed approach can provide strong and flexible support for product recovery decision-making within the reverse supply chain.
机译:对于希望采用产品回收策略来实现环境责任,同时仍能实现反向供应链内利润目标的公司而言,性能评估和报废产品的选择已成为至关重要的问题。但是,由于所涉及的决策因素多种多样,而且与之相关的内在不确定性,仍然缺乏解决这些问题的综合方法。这项研究提出并研究了一种多相混合方法,以识别最能满足标准(例如技术可行性,经济效益和环境影响)的可回收产品。所提出的方法同时考虑了多个且相互冲突的目标,实际约束和信息不确定性。首先使用模糊逻辑和概率论来估计二手产品的质量状况,然后根据产品生命周期信息进行成本效益分析。然后,将改进的偏好评估排序组织方法用于丰富度评估,将其作为多准则决策工具,用于将语言评估项量化并聚合为恢复偏好因子。此外,所有定性和定量数据都纳入目标编程模型中,以实现折衷和满意的解决方案。我们提供一个数值示例来说明所提出方法的有效性和优越性。结果表明,所提出的方法可以为反向供应链中的产品回收决策提供强大而灵活的支持。

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