Optimization and control of extractive distillation for formic acid-water separation with maximum-boiling azeotrope

被引:17
作者
Ge, Xiaolong [1 ,3 ]
Zhang, Ran [1 ]
Liu, Pengfei [4 ]
Liu, Botan [1 ]
Liu, Botong [2 ,3 ]
机构
[1] Tianjin Univ Sci & Technol, Coll Chem Engn & Mat Sci, Tianjin Key Lab Brine Chem Engn & Resource Eco Ut, Tianjin 300457, Peoples R China
[2] Tsinghua Univ, Dept Chem Engn, 30 Shuangqing Rd, Beijing 100084, Peoples R China
[3] Tianjin Univ, State Key Lab Chem Engn, Tianjin 300350, Peoples R China
[4] CNPC East China Design Inst Co Ltd, Qingdao 266071, Peoples R China
关键词
Process intensification; Sustainability; Extractive distillation; Process optimization; Linear model predictive control; DIVIDING-WALL COLUMN; PRESSURE-SWING DISTILLATION; MODEL-PREDICTIVE CONTROL; REACTIVE DISTILLATION; ETHYL-ACETATE; DESIGN; DEHYDRATION; SYSTEMS;
D O I
10.1016/j.compchemeng.2022.108075
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
It is urgent to develop sustainable chemical process through process intensification, especially for the energy-intensive distillation process. Formic acid-water forms maximum azeotrope which is purified by pressure-swing distillation in Kemira-Leonard (K-L) process and extraction plus distillation in BASF route. However, either process for this maximum azeotrope separation is energy-intensive. In the present work, by selecting the effective heavy entrainer, extractive distillation and extractive dividing wall column was firstly synthesized and optimized with genetic algorithm for formic acid-water separation. Based on optimal design, the energy consumption and CO2 emission among these proposed and existent processes were compared, and extractive distillation shows its strength for achieving high efficiency and sustainability. Then multi-loop PI control scheme and linear model predictive control based on temperature and temperature difference were developed, respectively. Dynamic response validates the control performance superiority of advanced controllers, especially for controlled variables with large overshoot, oscillations and settling time.
引用
收藏
页数:18
相关论文
共 55 条
[1]   Steady state analysis of snowball effects for reaction-separation-recycle systems with thermally coupled distillation sequences [J].
Alpuche-Manrique, Mariana ;
Rivera-Mejia, Teresa ;
Ramirez-Corona, Nelly ;
Jimenez-Gutierrez, Arturo .
CHEMICAL ENGINEERING RESEARCH & DESIGN, 2011, 89 (11A) :2207-2214
[2]  
Berg L., 1992, U.S. Patent, Patent No. [5173156A, 5173156]
[3]  
Berg L., 1987, U.S. Patent, Patent No. [4642166A, 4642166]
[4]  
Berg L., 1988, U.S. Patent, Patent No. [4786370A, 4786370]
[5]   Extractive Dividing Wall Column: Design and Optimization [J].
Bravo-Bravo, Cristofer ;
Gabriel Segovia-Hernandez, Juan ;
Gutierrez-Antonio, Claude ;
Luisa Duran, Ana ;
Bonilla-Petriciolet, Adrian ;
Briones-Ramirez, Abel .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2010, 49 (08) :3672-3688
[6]   Design and Control of a Heat Pump-Assisted Azeotropic Dividing Wall Column for EDA/Water Separation [J].
Chen, Mengqi ;
Yu, Na ;
Cong, Lin ;
Wang, Jianxin ;
Zhu, Minyan ;
Sun, Lanyi .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2017, 56 (34) :9770-9777
[7]   Comparison of heteroazeotropic and extractive distillation for the dehydration of propylene glycol methyl ether [J].
Chen, Yi-Chun ;
Yu, Bor-Yih ;
Hsu, Chung-Chih ;
Chien, I-Lung .
CHEMICAL ENGINEERING RESEARCH & DESIGN, 2016, 111 :184-195
[8]  
Chua W.X., 2019, CHEM ENG SCI X, V2
[9]   Design, Optimization, and Retrofit of the Formic Acid Process II: Reactive Distillation and Reactive Dividing-Wall Column Retrofits [J].
da Cunha, Sergio ;
Rangaiah, G. P. ;
Hidajat, Kus .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2018, 57 (43) :14665-14679
[10]   Design, Optimization, and Retrofit of the Formic Acid Process I: Base Case Design and Dividing-Wall Column Retrofit [J].
da Cunha, Sergio ;
Rangaiah, G. P. ;
Hidajat, Kus .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2018, 57 (29) :9554-9570