DocumentCode :
185032
Title :
Population balance model based multi-objective optimization and robustness analysis of a continuous plug flow antisolvent crystallizer
Author :
Ridder, Bradley J. ; Majumder, Atanu ; Nagy, Zoltan K.
Author_Institution :
Dept. of Chem. Eng., Purdue Univ., West Lafayette, IN, USA
fYear :
2014
fDate :
4-6 June 2014
Firstpage :
3530
Lastpage :
3535
Abstract :
Crystallization is a major separation process in the pharmaceutical industry. Most crystallizations are performed batchwise, but there is great incentive for switching to continuous operation. We have investigated the modeling, simulation, optimization, and robustness of a multi-segmented, multi-addition plug-flow crystallizer (MSMA-PFC). The design accepts multiple antisolvent flows along its length, permitting localized control of supersaturation. A mass balance equation was used to track the depletion of dissolved solute (flufenamic acid), and a population balance equation for tracking the crystal size distribution. Multiobjective optimization was done using the antisolvent flowrates into each segment as decision variables. The genetic algorithm was used to calculate the Pareto frontiers for the two competing objectives of maximizing average crystal size (L43), and minimizing coefficient of variation (CV). The sensitivity of the Pareto frontier to variation in the growth and nucleation kinetic parameters was investigated. The robustness of a single solution was examined as well with respect to error in the kinetic parameters, as well as to errors in antisolvent flowrate.
Keywords :
Pareto optimisation; crystallisation; genetic algorithms; organic compounds; pharmaceutical industry; separation; MSMA-PFC; Pareto frontier; antisolvent flowrates; coefficient of variation; continuous plug flow antisolvent crystallizer; crystal size distribution; crystallization; flufenamic acid; genetic algorithm; mass balance equation; multiobjective optimization; nucleation kinetic parameter; pharmaceutical industry; population balance model; robustness analysis; separation process; supersaturation; Crystallizers; Crystals; Equations; Kinetic theory; Mathematical model; Method of moments; Optimization; Optimal control; Process control; Uncertain systems;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
American Control Conference (ACC), 2014
Conference_Location :
Portland, OR
ISSN :
0743-1619
Print_ISBN :
978-1-4799-3272-6
Type :
conf
DOI :
10.1109/ACC.2014.6859425
Filename :
6859425
Link To Document :
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