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Model-based On-Line Optimization Framework for Semi-batch Polymerization Reactors

机译:半间歇式聚合反应器的基于模型的在线优化框架

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Until recently, computational complexities and lack of detailed, nonlinear dynamic models have stood as main obstacles to widespread industrial adoption of model-based on-line optimization for operation of batch and semi-batch reactors. With recent advances in both dynamic modeling techniques and nonlinear programming (NLP) solvers, it is conceivable now to use significantly-sized, nonlinear models directly for on-line state/parameter estimation and optimal control calculations. In this study, we propose a framework for doing this. In the proposed framework, nonlinear first principles dynamic model-based optimizations are performed at several time points throughout a batch run over a fixed horizon, in order to estimate the current state of the model and to refine the target batch time and input variables. Here we combine shrinking horizon nonlinear model predictive control (sh-NMPC) with expanding horizon least squares estimation (eh-LSE). This framework is tested on a large-scale anionic propylene oxide (PO) polymerization process, whose operation considers not only certain end-product specifications but also safety constraints. It is shown that the proposed method is not only computationally feasible (averaging less than 10 CPU seconds at each sampling time) but leads to excellent performance, satisfying the product specification target despite initialization errors and measurement noise.
机译:直到最近,计算的复杂性和缺乏详细的非线性动力学模型一直是在工业上广泛采用基于模型的间歇和半间歇反应器运行在线优化的主要障碍。随着动态建模技术和非线性规划(NLP)求解器的最新发展,现在可以想到的是,直接使用大尺寸的非线性模型进行在线状态/参数估计和最佳控制计算。在这项研究中,我们提出了一个这样做的框架。在提出的框架中,基于固定时间范围内的批处理中的几个时间点,基于非线性第一原理基于动态模型的优化,以估计模型的当前状态并优化目标批处理时间和输入变量。在这里,我们将缩小水平线非线性模型预测控制(sh-NMPC)与扩展水平线最小二乘估计(eh-LSE)相结合。该框架在大规模的阴离子环氧丙烷(PO)聚合工艺上进行了测试,该工艺的操作不仅考虑某些最终产品规格,而且考虑安全性约束。结果表明,该方法不仅计算上可行(每个采样时间平均少于10个CPU秒),而且具有出色的性能,尽管存在初始化错误和测量噪声,但仍满足产品规格目标。

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