The Multivariable Control of Carbon Dioxide Absorption System using the Proportional Integral Plus (PIP) Controller
The present article investigates the implementation of non-minimal state space (NMSS) representation with proportional-integral-plus (PIP) controller for the carbon dioxide absorption process of Shiraz petrochemical ammonia unit. The PIP controller is a logical extension of conventional PI/PID contr...
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doaj-254c08296ee84dcca3a6d0c32655b8832021-01-10T06:42:43ZengUniversity of TehranJournal of Chemical and Petroleum Engineering2423-673X2423-67212020-12-0154218720410.22059/JCHPE.2020.287075.1293The Multivariable Control of Carbon Dioxide Absorption System using the Proportional Integral Plus (PIP) ControllerFereshte Tavakoli Dastjerd0Jafar Sadeghi1Department of Chemical Engineering, Faculty of engineering, University of Sistan and Baluchestan, Zahedan, IranDepartment of Chemical Engineering, Faculty of engineering, University of Sistan and Baluchestan, Zahedan, IranThe present article investigates the implementation of non-minimal state space (NMSS) representation with proportional-integral-plus (PIP) controller for the carbon dioxide absorption process of Shiraz petrochemical ammonia unit. The PIP controller is a logical extension of conventional PI/PID controllers with additional dynamic feedback and input compensators. PIP controller is used for multivariable control without limitation on the number of controlled variables. A Multi Input - Multi Output (MIMO) square model was extracted from step response test. In this way, input water flow rate to carbon dioxide absorption system, the heat duty of input absorbent cooler to tray (1) of absorption tower and re-boiler heat duty of stripping tower are chosen as manipulated variables (inputs), while carbon dioxide mole fraction in absorption tower vapor product, the water mole fraction in absorption tower liquid product and tray temperature No. 36 of stripping tower are determined as controlled ones (outputs). The system identification is performed with three input and three output variables using step response test. As a result, continuous and discrete time transfer function matrices and suitable NMSS model for PIP controller are reported. Finally, in order to evaluate the PIP control performance, the feed flow rate increases by 2%. The results show the proper performance of designed PIP controller for both disturbance rejection and set point tracking.https://jchpe.ut.ac.ir/article_78361.htmlmultivariable controlsquare structuretrue digital controlmimo systemriccati equationcarbon dioxide absorptionreactive absorptionsimulation |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Fereshte Tavakoli Dastjerd Jafar Sadeghi |
spellingShingle |
Fereshte Tavakoli Dastjerd Jafar Sadeghi The Multivariable Control of Carbon Dioxide Absorption System using the Proportional Integral Plus (PIP) Controller Journal of Chemical and Petroleum Engineering multivariable control square structure true digital control mimo system riccati equation carbon dioxide absorption reactive absorption simulation |
author_facet |
Fereshte Tavakoli Dastjerd Jafar Sadeghi |
author_sort |
Fereshte Tavakoli Dastjerd |
title |
The Multivariable Control of Carbon Dioxide Absorption System using the Proportional Integral Plus (PIP) Controller |
title_short |
The Multivariable Control of Carbon Dioxide Absorption System using the Proportional Integral Plus (PIP) Controller |
title_full |
The Multivariable Control of Carbon Dioxide Absorption System using the Proportional Integral Plus (PIP) Controller |
title_fullStr |
The Multivariable Control of Carbon Dioxide Absorption System using the Proportional Integral Plus (PIP) Controller |
title_full_unstemmed |
The Multivariable Control of Carbon Dioxide Absorption System using the Proportional Integral Plus (PIP) Controller |
title_sort |
multivariable control of carbon dioxide absorption system using the proportional integral plus (pip) controller |
publisher |
University of Tehran |
series |
Journal of Chemical and Petroleum Engineering |
issn |
2423-673X 2423-6721 |
publishDate |
2020-12-01 |
description |
The present article investigates the implementation of non-minimal state space (NMSS) representation with proportional-integral-plus (PIP) controller for the carbon dioxide absorption process of Shiraz petrochemical ammonia unit. The PIP controller is a logical extension of conventional PI/PID controllers with additional dynamic feedback and input compensators. PIP controller is used for multivariable control without limitation on the number of controlled variables. A Multi Input - Multi Output (MIMO) square model was extracted from step response test. In this way, input water flow rate to carbon dioxide absorption system, the heat duty of input absorbent cooler to tray (1) of absorption tower and re-boiler heat duty of stripping tower are chosen as manipulated variables (inputs), while carbon dioxide mole fraction in absorption tower vapor product, the water mole fraction in absorption tower liquid product and tray temperature No. 36 of stripping tower are determined as controlled ones (outputs). The system identification is performed with three input and three output variables using step response test. As a result, continuous and discrete time transfer function matrices and suitable NMSS model for PIP controller are reported. Finally, in order to evaluate the PIP control performance, the feed flow rate increases by 2%. The results show the proper performance of designed PIP controller for both disturbance rejection and set point tracking. |
topic |
multivariable control square structure true digital control mimo system riccati equation carbon dioxide absorption reactive absorption simulation |
url |
https://jchpe.ut.ac.ir/article_78361.html |
work_keys_str_mv |
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