Dynamics and predictive control of gas phase propylene polymerization in fluidized bed reactors

A two-phase dynamic model, describing gas phase propylene polymerization in a fluidized bed reactor,was used to explore the dynamic behavior and process control of the polypropylene production rate and reactor temperature. The open loop analysis revealed the nonlinear behavior of the polypropylene f...

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Main Authors: Shamiri, A., Hussain, M.A., Mjalli, F.S., Mostoutfi, N., Hajimolana, S.
Format: Article
Published: 2013
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Online Access:http://eprints.um.edu.my/9773/
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Institution: Universiti Malaya
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spelling my.um.eprints.97732014-04-28T01:37:02Z http://eprints.um.edu.my/9773/ Dynamics and predictive control of gas phase propylene polymerization in fluidized bed reactors Shamiri, A. Hussain, M.A. Mjalli, F.S. Mostoutfi, N. Hajimolana, S. QD Chemistry TA Engineering (General). Civil engineering (General) A two-phase dynamic model, describing gas phase propylene polymerization in a fluidized bed reactor,was used to explore the dynamic behavior and process control of the polypropylene production rate and reactor temperature. The open loop analysis revealed the nonlinear behavior of the polypropylene fluidized bed reactor, justifying the use of an advanced control algorithm for efficient control of the process variables. In this case, a centralized model predictive control (MPC) technique was implemented to control the polypropylene production rate and reactor temperature by manipulating the catalyst feed rate and cooling water flow rate respectively. The corresponding MPC controller was able to track changes in the setpoint smoothly for the reactor temperature and production rate while the setpoint tracking of the conventional proportional-integral (PI) controller was oscillatory with overshoots and obvious interaction between the reactor temperature and production rate loops. The MPC was able to produce controller moves which not only were well within the specified input constraints for both control variables, but also non-aggressive and sufficiently smooth for practical implementations. Furthermore, the closed loop dynamic simulations indicated that the speed of rejecting the process disturbances for the MPC controller were also acceptable for both controlled variables. 2013-09 Article PeerReviewed Shamiri, A. and Hussain, M.A. and Mjalli, F.S. and Mostoutfi, N. and Hajimolana, S. (2013) Dynamics and predictive control of gas phase propylene polymerization in fluidized bed reactors. Chinese Journal of Chemical Engineering, 21 (9). pp. 1015-1029. DOI: 10.1016/S1004-9541(13)60565-0
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic QD Chemistry
TA Engineering (General). Civil engineering (General)
spellingShingle QD Chemistry
TA Engineering (General). Civil engineering (General)
Shamiri, A.
Hussain, M.A.
Mjalli, F.S.
Mostoutfi, N.
Hajimolana, S.
Dynamics and predictive control of gas phase propylene polymerization in fluidized bed reactors
description A two-phase dynamic model, describing gas phase propylene polymerization in a fluidized bed reactor,was used to explore the dynamic behavior and process control of the polypropylene production rate and reactor temperature. The open loop analysis revealed the nonlinear behavior of the polypropylene fluidized bed reactor, justifying the use of an advanced control algorithm for efficient control of the process variables. In this case, a centralized model predictive control (MPC) technique was implemented to control the polypropylene production rate and reactor temperature by manipulating the catalyst feed rate and cooling water flow rate respectively. The corresponding MPC controller was able to track changes in the setpoint smoothly for the reactor temperature and production rate while the setpoint tracking of the conventional proportional-integral (PI) controller was oscillatory with overshoots and obvious interaction between the reactor temperature and production rate loops. The MPC was able to produce controller moves which not only were well within the specified input constraints for both control variables, but also non-aggressive and sufficiently smooth for practical implementations. Furthermore, the closed loop dynamic simulations indicated that the speed of rejecting the process disturbances for the MPC controller were also acceptable for both controlled variables.
format Article
author Shamiri, A.
Hussain, M.A.
Mjalli, F.S.
Mostoutfi, N.
Hajimolana, S.
author_facet Shamiri, A.
Hussain, M.A.
Mjalli, F.S.
Mostoutfi, N.
Hajimolana, S.
author_sort Shamiri, A.
title Dynamics and predictive control of gas phase propylene polymerization in fluidized bed reactors
title_short Dynamics and predictive control of gas phase propylene polymerization in fluidized bed reactors
title_full Dynamics and predictive control of gas phase propylene polymerization in fluidized bed reactors
title_fullStr Dynamics and predictive control of gas phase propylene polymerization in fluidized bed reactors
title_full_unstemmed Dynamics and predictive control of gas phase propylene polymerization in fluidized bed reactors
title_sort dynamics and predictive control of gas phase propylene polymerization in fluidized bed reactors
publishDate 2013
url http://eprints.um.edu.my/9773/
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