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Introducing uncertainty analysis of nucleation and crystal growth models in Process Analytical Technology (PAT) system design of crystallization processes

机译:介绍结晶过程的过程分析技术(paT)系统设计中的成核和晶体生长模型的不确定性分析

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摘要

This paper presents the application of uncertainty and sensitivity analysis as part of a systematic modelbased process monitoring and control (PAT) system design framework for crystallization processes. For the uncertainty analysis, the Monte Carlo procedure is used to propagate input uncertainty, while for sensitivity analysis, global methods including the standardized regression coefficients (SRC) and Morris screening are used to identify the most significant parameters. The potassium dihydrogen phosphate (KDP) crystallization process is used as a case study, both in open-loop and closed-loop operation. Inthe uncertainty analysis, the impact on the predicted output of uncertain parameters related to the nucleation and the crystal growth model has been investigated for both a one- and two-dimensional crystal size distribution (CSD). The open-loop results show that the input uncertainties lead to significant uncertainties on the CSD, with appearance of a secondary peak due to secondary nucleation for both cases. The sensitivity analysis indicated that the most important parameters affecting the CSDs are nucleation order and growth order constants. In the proposed PAT system design (closed-loop), the target CSD variability was successfully reduced compared to the open-loop case, also when considering uncertainty in nucleation and crystal growth model parameters. The latter forms a strong indication of the robustness of the proposed PAT system design in achieving the target CSD and encourages its transfer to full-scaleimplementation.
机译:本文介绍了不确定性和敏感性分析的应用,将其作为结晶过程的基于系统模型的过程监控(PAT)系统设计框架的一部分。对于不确定性分析,使用蒙特卡洛程序传播输入不确定性,而对于敏感性分析,则使用包括标准化回归系数(SRC)和莫里斯筛选在内的全局方法来识别最重要的参数。在开环和闭环操作中均以磷酸二氢钾(KDP)结晶过程为例。在不确定性分析中,已经针对一维和二维晶体尺寸分布(CSD)研究了与成核和晶体生长模型有关的不确定参数对预测输出的影响。开环结果表明,输入不确定性导致CSD的显着不确定性,两种情况均由于次级成核而出现次级峰。敏感性分析表明,影响CSD的最重要参数是成核顺序和生长顺序常数。在拟议的PAT系统设计(闭环)中,与开环情况相比,还考虑了成核和晶体生长模型参数的不确定性时,成功降低了目标CSD变异性。后者强有力地表明了所提出的PAT系统设计在实现目标CSD方面的鲁棒性,并鼓励将其转移到全面实施中。

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