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Analysis and Control of High-Pressure Die-Casting Process Parameters with Use of Data Mining Tools

机译:利用数据采矿工具的高压压铸工艺参数分析与控制

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This paper presents methods of improving the quality of highpressure die-casting (HPDC) of passenger car parts in one of the Polish foundries. The process of high-pressure die-casting has been characterized in the aspect of two control methods: engineering and statistical. Focus is put on practical application of statistical process control (SPC) results, including but not limited to control charts and their interpretation as a source of data for the Data Mining models. The end result is a set of mathematical models developed in the MATLAB environment, preceded by popular statistical analyses, such as the analysis of correlation between process parameters, normality tests, and the analysis of variance (ANOVA), which examines the impact of process parameter values on the final product quality. Computational intelligence models have been developed to predict the fraction of faulty products on the basis of out-of control conditions detected by the use of the SPC and control charts, for selected statistically relevant process parameters. The approach presented in this paper can be used as a tool supporting the decision-making processes and, in the future, as a tool for direct or automated process control.
机译:本文介绍了提高乘用车零件的高压压铸质量(HPDC)在其中一个波兰铸造厂。高压压铸过程的特点是两种控制方法:工程和统计。专注于实际应用统计过程控制(SPC)结果,包括但不限于控制图表及其作为数据挖掘模型数据来源的解释。最终的结果是一组在MATLAB环境开发的数学模型,通过流行的统计分析,如工艺参数,正态性检验和方差分析(ANOVA),其检查过程参数的影响之间的相关性的分析之前最终产品质量的价值观。已经开发了计算智能模型来预测基于通过使用SPC和控制图来检测的错误控制条件的故障产品的分数,用于选定的统计相关的工艺参数。本文提出的方法可用作支持决策过程的工具,并将来,作为用于直接或自动化过程控制的工具。

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