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A new optimization model for closed-loop supply chain networks

机译:闭环供应链网络的新优化模型

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Increasing environmental concerns require businesses to become more responsive to products that either have been returned or that are at the end of their useful lives. Organization's responsiveness and their reactions toward life cycles of products are critical to achieve sustained success once fluctuations are recurrent and the business environments are turbulent. Life cycles are getting shorter, and efficient handling can save large amounts of cash since many materials can be extracted, reused, and redistributed. Reverse Logistics (RL) and Closed Loop Supply Chains (CLSC) have garnered growing interest as a way to manage this reverse flow of products in a cost effective way. It is discernible that the degree of complexity in closed loop networks is usually higher than open networks. In a closed loop supply chain network, the attempt is to ensure a smooth flow of materials as well as extracting the maximum value from returning and end-of-life goods. Reduction of waste and generating profit for enterprises are two paramount achievements through integrating forward and reverse logistics. By considering various proposed conceptual models for CLSC, in this study at first we present a comprehensive applicable conceptual model. Then, we specifically focus on a CLSC network, which includes multiple plants, collection centers, demand markets, and products. To this aim, a generalized proposed mixed-integer linear programming model is presented that minimizes the total cost. The objective is to know how many, which production plants and Return Processors (Collection sites) should be open, which products, and in which quantities should have stuck. The goal of this model is to minimize the supply chain waste and reduce supply chain costs. In such a way, the supply chain system can be agile, integrated, robust, and lean. The proposed model can be extended to consider more environmental factors. Moreover, the efficacy and efficiency of that have been validated by case study an- numerical example.
机译:对环境的关注日益增加,要求企业对已退货或使用寿命即将结束的产品做出更快的响应。一旦反复出现波动且业务环境动荡,组织的响应能力及其对产品生命周期的反应对于取得持续的成功至关重要。生命周期越来越短,并且由于可以提取,重新使用和重新分配许多材料,因此有效的处理可以节省大量现金。逆向物流(RL)和闭环供应链(CLSC)作为一种以经济有效的方式管理这种逆向产品流的方法,引起了越来越多的关注。可以看出,闭环网络中的复杂度通常高于开放网络。在闭环供应链网络中,试图确保物料的顺畅流动,并从退货和报废产品中获取最大价值。通过整合正向和反向物流,减少浪费和为企业创造利润是两项最重要的成就。通过考虑针对CLSC提出的各种概念模型,在本研究中,我们首先提出一个全面的适用概念模型。然后,我们特别关注CLSC网络,该网络包括多个工厂,收集中心,需求市场和产品。为此,提出了一种通用的混合整数线性规划模型,该模型使总成本最小化。目的是要知道应该开放多少座生产工厂和退货处理器(回收站),哪些产品以及应保持的数量。该模型的目标是最大程度地减少供应链浪费并降低供应链成本。以这种方式,供应链系统可以是敏捷的,集成的,健壮的和精益的。可以将提出的模型扩展为考虑更多的环境因素。此外,案例研究和算例验证了该方法的有效性和效率。

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