DocumentCode :
2210971
Title :
Product quality improvement in a high-temperature free-radical polymerization reactor
Author :
Quan, Congling ; Soroush, Masoud ; Grady, Michael C.
Author_Institution :
Dept. of Chem. Eng., Drexel Univ., Philadelphia, PA, USA
Volume :
5
fYear :
2003
fDate :
4-6 June 2003
Firstpage :
3980
Abstract :
In response to the strict environmental regulations on volatile organic solvents in paints and coatings, high-temperature solution polymerization has increasingly been used to manufacture low-molecular-weight, acrylic polymer resins for automotive coatings. Free-radical polymerization of acrylate and methacrylate monomers at high-temperatures (140-200 °C) involves a number of side reactions that have a marked effect on the quality of the polymer product. These reactions are not significant at low temperatures. We have studied kinetics of liquid-phase, high-temperature, free-radical, n-butyl acrylate (nBA), polymerization reactions, leading to the development of a mathematical model for the polymerization. The model is capable of predicting the polymer molecular weight distribution and several functionality indices very accurately. For a semi-batch nBA polymerization reactor, a multi-objective optimization problem is solved to calculate optimal feed (initiator, solvent and monomer) flow-rate and reactor temperature profiles. These profiles minimize total amount of initiator fed to the reactor, polydispersity index of the final product, and batch time (tf), subject to (a) the reactor dynamics, (b) a monomer conversion of above 0.99 at tf, and (c) a polymer weight-average molecular weight of 8,000 at tf. The results show that high-quality polymers can be produced at lower operating costs by minimizing initiator usage and batch time.
Keywords :
chemical reactors; high-temperature techniques; polymerisation; process control; quality control; acrylate monomer; free-radical polymerization reactor; high-temperature solution polymerization; liquid-phase kinetics; methacrylate monomer; optimal feed flow rate; polydispersity index; polymer molecular weight distribution; polymerization reaction; product quality improvement; reactor temperature profiles; Automotive engineering; Coatings; Inductors; Kinetic theory; Manufacturing; Paints; Polymer films; Resins; Solvents; Temperature;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
American Control Conference, 2003. Proceedings of the 2003
ISSN :
0743-1619
Print_ISBN :
0-7803-7896-2
Type :
conf
DOI :
10.1109/ACC.2003.1240458
Filename :
1240458
Link To Document :
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