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Parameter estimation with estimability analysis applied to an industrial scale polymerization process

机译:具有可估计性分析的参数估计应用于工业规模的聚合过程

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This paper aims to estimate the parameters of a complex model representing an industrial scale polymerization process. The estimability analysis of the parameters prior to estimation allows simplifying the optimization problem but it is usually neglected in literature when industrial data is used for estimation. In this case, though, the estimability analysis would be even more important since usually less data is available, they are associated with a higher uncertainty and the experiments might not be designed as in laboratory or pilot plant. The orthogonalization method reduced from 68 to 29 the number of parameters of the model. Polymer properties, which are measured offline with low frequency, as well as process temperatures and flow rates are used for validating the model. Small deviations, up to 5%, between model prediction and experimental data indicate the quality of fit of the model and the importance of carrying out first an estimability analysis.
机译:本文旨在估计代表工业规模聚合过程的复杂模型的参数。在估计之前对参数进行可估计性分析可以简化优化问题,但是当使用工业数据进行估计时,它通常在文献中被忽略。但是,在这种情况下,可估计性分析将变得更加重要,因为通常可用的数据较少,它们具有较高的不确定性,并且可能无法像在实验室或中试工厂中那样设计实验。正交化方法将模型的参数数量从68个减少到29个。聚合物性能(可通过离线离线测量)以及过程温度和流速用于验证模型。模型预测和实验数据之间的小偏差(最高可达5%)表明模型的拟合质量以及首先进行可估计性分析的重要性。

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