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Optimal design of the auto parts supply chain for JIT operations: Sequential bifurcation factor screening and multi-response surface methodology

机译:针对准时制生产的汽车零部件供应链的优化设计:顺序分叉因子筛选和多响应面方法

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摘要

This research proposes a solution framework based on discrete-event simulation, sequential bifurcation (SB) and response surface methodology (RSM) to address a multi-response optimization problem inherent in an auto parts supply chain. The objective is to identify the most efficient operating setting that would maximize the logistics performance after the expansion of the assembly plant's capacity due to market growth. In the proposed framework, we first construct a comprehensive simulation as a platform to model the physical flow of the auto parts operations. We then apply the SB to identify the most important factors that influence system performance. To determine the optimal levels of these key factors, we employ RSM to develop metamodels that best describe the relationship between key decision variables and the multiple system responses. We adapt the Derringer-Suich's desirability function to find the optimal solution of the metamodels. Computational study shows that our method enables the greatest improvement on system performance. The proposed method helps the case firm develop insights into system dynamics and to optimize the operating condition. It realizes the performance objective of the auto parts supply chain without the need for additional fiscal investment.
机译:这项研究提出了一种基于离散事件仿真,顺序分叉(SB)和响应面方法(RSM)的解决方案框架,以解决汽车零件供应链中固有的多响应优化问题。目的是确定最有效的运行环境,以便在装配厂的产能因市场增长而扩大后最大化物流绩效。在提出的框架中,我们首先构建一个全面的仿真作为平台,以对汽车零件操作的物理流程进行建模。然后,我们应用SB来确定影响系统性能的最重要因素。为了确定这些关键因素的最佳水平,我们采用RSM来开发能最好地描述关键决策变量与多个系统响应之间关系的元模型。我们采用Derringer-Suich的期望函数来找到元模型的最优解。计算研究表明,我们的方法可以最大程度地提高系统性能。所提出的方法可帮助案例公司深入了解系统动力学并优化操作条件。它无需额外的财政投资即可实现汽车零部件供应链的绩效目标。

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