A practical, systematic approach for the scaling-up and Modeling of industrial copolymerization reactors

被引:15
作者
Guerrero-Sánchez, C
Saldívar, E [1 ]
Hernández, M
Jiménez, A
机构
[1] CID R&D, Desc Chem Sector, Lerma 52000, Mexico
[2] Inst Technol Celaya, Celaya, Mexico
来源
POLYMER REACTION ENGINEERING | 2003年 / 11卷 / 03期
关键词
copolymerization; mathematical modeling copolymerization processes; industrial polymerization reactors; gel effect;
D O I
10.1081/PRE-120024422
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
A systematic methodology for the modeling and engineering analysis of industrial copolymerization reactors is presented. The methodology, especially suited for the scaling-up from laboratory experiments to pilot plant and industrial reactor level, consists of gradually building models of more complexity in a modular way as more information is obtained from experimental data and/or theoretical considerations. In the first stage, simple models for copolymer composition are written based on the Mayo-Lewis copolymerization equation and empirical copolymerization rate data for different reactor configurations (batch and CSTR) and reactor operations (steady state and some dynamic transients for the CSTR case). This set of models, which use minimal or no data fitting, is shown to be highly predictive. In a second stage, as kinetic information is obtained in the form of an expression for the copolymerization rate, either empirical or mechanistic, the models can be gradually expanded to include a full non-linear analysis of steady state multiplicities and other interesting phenomena, which can have an impact on the practical operation of the reactor. Also, as a complementary tool for the modeling of copolymerization reactors, a new model for the gel effect in polymerization, based on analogies with the familiar diffusion controlled reactions in heterogeneous catalytic reactors, is outlined and used. The methodology is illustrated with examples drawn from industrial reactors in bulk and emulsion, including some industrial reactor data.
引用
收藏
页码:457 / 506
页数:50
相关论文
共 38 条
[11]   A COMPUTER-MODEL FOR THE GEL EFFECT IN FREE-RADICAL POLYMERIZATION [J].
CHIU, WY ;
CARRATT, GM ;
SOONG, DS .
MACROMOLECULES, 1983, 16 (03) :348-357
[12]   The mechanism of the propagation step in free-radical copolymerisation [J].
Coote, ML ;
Davis, TP .
PROGRESS IN POLYMER SCIENCE, 1999, 24 (09) :1217-1251
[13]   Mathematical modeling of multicomponent chain-growth polymerizations in batch, semibatch, and continuous reactors: A review [J].
Dube, MA ;
Soares, JBP ;
Penlidis, A ;
Hamielec, AE .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 1997, 36 (04) :966-1015
[14]   COMPARISON BETWEEN POLYMER DIFFUSION AND CHAIN RADICAL TERMINATION KINETICS - THE IMPORTANCE OF POLYDISPERSITY [J].
FALDI, A ;
TIRRELL, M ;
LODGE, TP .
MACROMOLECULES, 1994, 27 (15) :4176-4183
[15]   MONOMER DIFFUSION AND THE KINETICS OF METHYL-METHACRYLATE RADICAL POLYMERIZATION AT INTERMEDIATE TO HIGH CONVERSION [J].
FALDI, A ;
TIRRELL, M ;
LODGE, TP ;
VONMEERWALL, E .
MACROMOLECULES, 1994, 27 (15) :4184-4192
[16]  
Gao J, 1996, J MACROMOL SCI R M C, VC36, P199
[17]  
Gao J, 1998, J MACROMOL SCI R M C, VC38, P651
[18]   BULK COPOLYMERIZATION OF STYRENE AND ACRYLONITRILE - EXPERIMENTAL KINETICS AND MATHEMATICAL-MODELING [J].
GARCIARUBIO, LH ;
LORD, MG ;
MACGREGOR, JF ;
HAMIELEC, AE .
POLYMER, 1985, 26 (13) :2001-2013
[19]   THE DYNAMIC BEHAVIOR OF CONTINUOUS POLYMERIZATION REACTORS .2. NON-ISOTHERMAL SOLUTION HOMOPOLYMERIZATION AND COPOLYMERIZATION IN A CSTR [J].
HAMER, JW ;
AKRAMOV, TA ;
RAY, WH .
CHEMICAL ENGINEERING SCIENCE, 1981, 36 (12) :1897-1914
[20]  
Hoppe S, 1998, POLYM REACT ENG, V6, P1