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Dynamic simulation and model predictive control for gas antisolvent ecrystallization process

机译:气体反溶剂结晶过程的动态模拟和模型预测控制

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Crystallization processes are widely used in various applications such as polymers, dyes, pharmaceuticals, and explosives. Novel crystallization processes using supercritical fluids have recently attracted much attention due to the environmental advantage of using environmentally benign carbon dioxide as a solvent. Gas anti-solvent (GAS) process is one of the most common supercritical processes, which utilize the low solubility of the anti-solvent to produce particles. In this work, a mathematical model from a population balance model (PBM) is developed to describe the particle size distribution (PSD) of GAS process and it is numerically solved. The developed PBM involves a set of partial differentials equation with algebraic constraints, which requires effective numerical approaches. A solution scheme based on a high resolution method is proposed to solve the dynamic problem using MATLAB. In addition, the effect of the supercritical CO2 addition rate is investigated. At last, we present the results of open-loop test for the system and propose a model predictive control (MPC) strategy to control the particle size distribution of the GAS process.
机译:结晶过程广泛用于各种应用中,例如聚合物,染料,药物和炸药。由于使用环境友好的二氧化碳作为溶剂的环境优势,最近使用超临界流体的新型结晶工艺已引起了广泛关注。气体反溶剂(GAS)工艺是最常见的超临界工艺之一,该工艺利用反溶剂的低溶解度来生产颗粒。在这项工作中,从人口平衡模型(PBM)建立了数学模型来描述GAS工艺的粒度分布(PSD),并对其进行了数值求解。所开发的PBM涉及一组具有代数约束的偏微分方程,这需要有效的数值方法。提出了一种基于高分辨率方法的解决方案,以利用MATLAB解决动力学问题。另外,研究了超临界CO 2添加速率的影响。最后,我们介绍了该系统的开环测试结果,并提出了一种模型预测控制(MPC)策略来控制GAS工艺的粒度分布。

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