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A Fuzzy Mixed Integer Linear Programming Model for A Reverse Logistics System with A Real Case Application

机译:逆向物流系统的模糊混合整数线性规划模型及实际应用

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摘要

Environmental concerns, providing a decrease in production cost and utility of products and materials constitute reverse logistics activities in recent years. One of the most important goals of the reverse logistics network design is to minimize the costs or to maximize the profit. By the way, deciding on the number of collection centers, fabrics and distribution centers in a reverse logistics system are also very important. Uncertain factors can affect a reverse logistic network negatively. In this paper to cope with these uncertainties a fuzzy mixed integer linear programming model is developed for a reverse logistics network with a real case application on white goods sector refrigerator product group. In the proposed model customers' demand, return rate of products, unit transportation cost and repair cost are considered as uncertain parameters. The proposed model is solved by using General Algebraic Modeling System (GAMS)/CPLEX 9.0 optimization software ant it is executed for different return and repair rates to determine and compare the number of collection centers, fabrics, distribution centers and maximum profit. The obtained results are consistent with each other.
机译:近年来,对环境的关注降低了生产成本,降低了产品和材料的利用率,构成了逆向物流活动。逆向物流网络设计的最重要目标之一是最小化成本或最大化利润。顺便说一句,决定逆向物流系统中收集中心,面料和分配中心的数量也非常重要。不确定的因素可能会对反向物流网络产生负面影响。为了解决这些不确定性,建立了一种模糊混合整数线性规划模型,该模型用于逆向物流网络,并在白色家电冰箱产品组上有实际应用。在提出的模型中,客户的需求,产品的退货率,单位运输成本和维修成本被视为不确定参数。通过使用通用代数建模系统(GAMS)/ CPLEX 9.0优化软件对提出的模型进行求解,并针对不同的退货率和维修率执行该模型,以确定并比较收集中心,面料,分销中心的数量和最大利润。所得结果彼此一致。

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