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An improved stochastic programming model for supply chain planning of MRO spare parts

机译:MRO备件供应链计划的改进的随机规划模型

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摘要

The maintenance, repair and operation (MRO) spare parts that are vital to machine operations are playing an increasingly important role in manufacturing enterprises. MRO spare parts supply chain management planning must be coordinated to ensure spare part availability while keeping the total cost to a minimum. Due to the specificity of MRO spare parts, randomness and uncertainties in production and storage should be quantified to formulate the problem in a mathematical model. Given these considerations, this paper proposes an improved stochastic programming model for the supply chain planning of MRO spare parts. In our stochastic programming model, the following improvements are made: First, we quantify the uncertain production time capacity as a random variable with a probability distribution. Second, the upper bound of the storage cost is modeled as a multi-choice variable in the constraint. To derive the equivalent deterministic model, the Lagrange interpolating polynomial approach is used. The results of the numerical examples validate the feasibility and efficiency of the proposed model. Finally, the model is tested in the supply chain planning of continuous caster (CC) bearings.
机译:对于机器操作至关重要的维护,修理和操作(MRO)备件在制造企业中扮演着越来越重要的角色。 MRO备件供应链管理计划必须进行协调,以确保备件可用性,同时将总成本降至最低。由于MRO备件的特殊性,应量化生产和存储中的随机性和不确定性以在数学模型中提出问题。考虑到这些考虑因素,本文为MRO备件的供应链计划提出了一种改进的随机规划模型。在我们的随机规划模型中,进行了以下改进:首先,我们将不确定的生产时间容量量化为具有概率分布的随机变量。其次,将存储成本的上限建模为约束中的多项选择变量。为了导出等效确定性模型,使用了Lagrange插值多项式方法。数值算例结果验证了该模型的可行性和有效性。最后,该模型在连铸(CC)轴承的供应链计划中进行了测试。

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