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Visualization of a pharmaceutical unit operation: Wet granulation

机译:制药单元操作的可视化:湿法制粒

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Recent developments in the field of process engineering and manufacturing sciences enable a new level of process understanding. However, extracting this understanding from increasing amounts of information is challenging. The aim of this study was to create a process vector from a model process describing all relevant information and, by that means, create a tool for combining and visualizing this information. Physical (impeller torque and temperature) and chemical (near-infrared spectroscopy) information from a small-scale high-shear granulation was used in the process vector. The vectors created were visualized by two different methods: principal component analysis (PCA) and the self-organizing map (SOM). None of the individual measurement techniques were able to describe the state of the process alone, although they provided important information about the process. By combining the data and visualizing it, an overview could be achieved. The SOM approach had two advantages over the PCA: it presented the results in terms of the original variables and enabled the analysis of nonlinear responses. However, both visualization methods could be used to describe the progress of the process and to increase the level of process understanding.
机译:过程工程和制造科学领域的最新发展使过程理解的水平提高了。但是,从越来越多的信息中提取这种理解是具有挑战性的。这项研究的目的是从描述所有相关信息的模型过程中创建过程向量,并以此创建一种用于组合和可视化此信息的工具。过程矢量中使用了来自小规模高剪切造粒的物理(叶轮扭矩和温度)和化学(近红外光谱)信息。通过两种不同的方法可视化创建的载体:主成分分析(PCA)和自组织图(SOM)。尽管单个测量技术提供了有关过程的重要信息,但它们都无法单独描述过程的状态。通过组合数据并对其进行可视化,可以实现概览。与PCA相比,SOM方法有两个优点:它以原始变量的形式显示了结果,并能够分析非线性响应。但是,两种可视化方法都可以用来描述过程的进度并提高对过程的理解水平。

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