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Multivariable data analysis of a cold rolling control system to minimise defects

机译:冷轧控制系统的多变量数据分析,以最大程度地减少缺陷

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This paper focuses on the application of principal component analysis (PCA) to thoroughly analyse and interpret multidimensional data from a cold rolling process. The analysis includes the effects of variables on the final properties of strips in a cold rolling mill. Unscrambler software was used to analyse and identify hidden variables. Variable correlations were also used to derive correlations between the control parameters. The results of this research will be used to improve the selection of material in order to reduce the occurrence of defects in the cold rolling process and to improve the adjustment of the set points that are performed in every pass or section of the cold rolling process. The hot rolled strips that enter the cold rolling mill are made of different materials and are produced by different strip manufacturers. Some strips break during the thickness reduction process in the cold rolling mill. This paper focuses on two possible causes of breakage: non-uniform strip material properties and failures in the rolling mill process. Two types of rolled strips (those that break and those that do not break) were compared to identify causes of breakage. The results indicate that breakages are caused by material or process failures. PCA was applied to the dataset in order to identify and analyse the relationships between the variables in the process. This information was used to interpret and diagnose the process behaviour. Swarm analysis and relating observations to process behaviour were able to distinguish between different start-up conditions, and between desirable and undesirable process conditions.
机译:本文着重于主成分分析(PCA)的应用,以全面分析和解释冷轧过程中的多维数据。分析包括变量对冷轧带钢最终性能的影响。解扰器软件用于分析和识别隐藏变量。变量相关也被用于导出控制参数之间的相关。这项研究的结果将用于改善材料的选择,以减少冷轧过程中缺陷的发生,并改善在冷轧过程的每个道次或每个部分中执行的设定值的调整。进入冷轧机的热轧带钢由不同的材料制成,并由不同的带钢制造商生产。在冷轧机的减薄过程中,一些钢带断裂。本文着重探讨两种可能的断裂原因:带材材料性能不均匀和轧机过程中的故障。比较了两种类型的轧制带材(断裂的和不断裂的),以确定断裂的原因。结果表明,破损是由材料或工艺故障引起的。为了识别和分析过程中变量之间的关系,将PCA应用于数据集。此信息用于解释和诊断过程行为。群分析以及与过程行为相关的观察结果能够区分不同的启动条件之间以及期望的和不期望的过程条件之间。

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