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Application of multivariate statistical techniques for monitoring emulsion batch processes

机译:多元统计技术在乳液批处理过程监测中的应用

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The power of multivariate statistical methodologies, such as multi-way principal component analysis and projection to latent structures (PLS), for batch process analysis, monitoring, fault diagnosis, product quality prediction and improving process insight is illustrated in this work. The techniques were applied successfully to several emulsion polymerization batch processes; one of them is illustrated in this article. A key feature of this work is that reaction extent was used as the common reference scale to compare batches with varying time duration. Results indicate that variations in one ingredient trajectory and heat removal related variables contribute primarily to viscosity variability. A PLS model, relating product viscosity with process variables was developed. This model shows great promise as a predictive tool for new batches.
机译:多元统计方法的力量,例如多元主成分分析和对潜在结构(PLS)的投影,用于批处理分析,监测,故障诊断,产品质量预测和改进过程洞察力。将该技术成功应用于几种乳液聚合分批过程;其中一个是在本文中说明的。这项工作的一个关键特征是,反应程度被用作共同参考尺度,以比较具有不同持续时间的批次。结果表明,一种成分轨迹和散热相关变量的变化主要是粘度可变性。开发了PLS模型,将产品粘度与工艺变量相关联。该模型显示出作为新批次的预测工具的许多希望。

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