首页> 外文会议>MED-vol.16-2; American Society of Mechanical Engineers(ASME) International Mechanical Engineering Congress and Exposition; 20051105-11; Orlando,FL(US) >MULTIPLE FAULT DIAGNOSIS METHOD IN MULTI-STATION ASSEMBLY PROCESSES USING STATE SPACE MODEL AND ORTHOGONAL DIAGONALIZATION ANALYSIS
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MULTIPLE FAULT DIAGNOSIS METHOD IN MULTI-STATION ASSEMBLY PROCESSES USING STATE SPACE MODEL AND ORTHOGONAL DIAGONALIZATION ANALYSIS

机译:状态空间模型和正交诊断分析的多工位装配过程多故障诊断方法

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Dimensional control has a significant impact on the overall product quality and performance in large and complex multi-station assembly systems. From measurement data, the way to identify root causes for large variation of Key Product Characteristics (KPCs) is one of the most critical research topics in dimensional control. This paper proposes a new approach for multiple fault diagnosis in a multi-station assembly process by integrating multivariate statistical analysis with engineering model. Based on product/process information, by using the state space model, a set of fault patterns for multi-station assembly process are developed, which explicitly represent the relationship between the error sources and KPCs. The vectors of these patterns form an affine system. Afterwards, the Principal Component Analysis (PCA) is applied to conduct orthogonal diagonalization of the measurement data. Thus, the measurement data can be easily projected to the axes of the affine system. Whereby, the significance of each fault pattern shall be estimated accurately. Finally, a few case studies are also provided to validate the proposed methodology.
机译:在大型和复杂的多工位装配系统中,尺寸控制对整体产品质量和性能有重大影响。从测量数据中,识别关键产品特性(KPC)较大差异的根本原因的方法是尺寸控制中最关键的研究主题之一。通过将多元统计分析与工程模型相结合,提出了一种多站装配过程中多故障诊断的新方法。基于产品/过程信息,通过使用状态空间模型,开发了一套用于多站装配过程的故障模式,这些模式明确表示了错误源与KPC之间的关系。这些模式的向量形成仿射系统。之后,应用主成分分析(PCA)进行测量数据的正交对角化。因此,测量数据可以容易地投影到仿射系统的轴上。因此,每个故障模式的重要性应准确估算。最后,还提供了一些案例研究来验证所提出的方法。

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