Dynamic Modeling and Analysis of Process Constraints for Improvement for an Industrial Unipol® Polypropylene Fluidized Bed Reactor

被引:0
作者
Eslam S. Sbaaei
Mai M. Kamal Fouad
Tamer S. Ahmed
机构
[1] Cairo University,Chemical Engineering Department, Faculty of Engineering
[2] Zewail City of Science and Technology,Environmental Engineering Program
来源
Arabian Journal for Science and Engineering | 2022年 / 47卷
关键词
Unipol technology; Dynamic simulation; Aspen dynamics; Automated HAZOP;
D O I
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中图分类号
学科分类号
摘要
Many researchers report optimizations of chemical processes based on steady-state analysis. However, neglecting the time factor may lead sometimes to more waste generation and/or hazardous safety consequences. In this regard, we recently detailed a comprehensive modeling of a fluidized bed reactor (FBR) for Unipol® polypropylene process using the sequential modular simulation approach while incorporating the hydrodynamic correlations. Furthermore, a steady-state analysis and optimization technique was used to increase the plant profitability. The current manuscript presents dynamic modeling to identify process constraints that obstruct the process improvement recommended by the previous study. The current dynamic model was validated using industrial operational scenarios. The dynamic model was then utilized to explore the response of the FBR control system protection layer to unplanned operational scenarios, its ability to avoid waste generation, and achieve process safety. As such, an automated HAZOP study based on layer of protection analysis concept was applied for this purpose. As a result, to apply the recommended scheme by the steady-state study while ensuring safety and cleaner production in the process, it is necessary to revamp the existing FBR cooling system. The extra cost for revamping the cycle gas cooler is trivial compared to the potential increase in the process safety besides the plant productivity.
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页码:6135 / 6154
页数:19
相关论文
共 92 条
[1]  
Luo ZH(2009)Steady-state and dynamic modeling of commercial bulk polypropylene process of Hypol technology Chem. Eng. J. 149 370-382
[2]  
Su PL(2016)Polypropylene as a promising plastic: A review Am. J. Polym. Sci. 6 1-11
[3]  
Shi DP(2012)Control of industrial gas phase propylene polymerization in fluidized bed reactors J. Process Control. 22 947-958
[4]  
Zheng ZW(1999)Improved regulatory control of industrial gas-phase ethylene polymerization reactors Ind. Eng. Chem. Res. 38 2383-2390
[5]  
Maddah HA(1991)Nonlinear control of chemical processes: A review Ind. Eng. Chem. Res. 30 1391-1413
[6]  
Ho YK(1988)Estimation and control in polymerization reactors. A review Polym. Eng. Sci. 28 121-135
[7]  
Shamiri A(2018)A review on modeling and control of olefin polymerization in fluidized-bed reactors Rev. Chem. Eng. 35 311-333
[8]  
Mjalli FS(2017)Optimal trajectories for grade change control: application on a polyethylene gas phase reactor IFAC Proc. 34 469-474
[9]  
Hussain MA(1992)Optimal grade transitions in a gas phase polyethylene reactor AIChE J. 38 1564-1576
[10]  
Ali EM(2003)Optimal grade transition and selection of closed-loop controllers in a gas-phase olefin polymerization fluidized bed reactor Chem. Eng. Sci. 58 3643-3658