Optimizing the control system of cement milling: process modeling and controller tuning based on loop shaping procedures and process simulations
Based on a dynamical model of the grinding process in closed circuit mills, efficient efforts have been made to optimize PID controllers of cement milling. The process simulation is combined with an autoregressive model of the errors between the actual process values and the computed ones. Long term...
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Brazilian Society of Chemical Engineering
2014-03-01
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doaj-9efd7faf21a84cbe88325d427bf9041b2020-11-24T22:27:15ZengBrazilian Society of Chemical EngineeringBrazilian Journal of Chemical Engineering0104-66322014-03-0131115517010.1590/S0104-66322014000100015S0104-66322014000100015Optimizing the control system of cement milling: process modeling and controller tuning based on loop shaping procedures and process simulationsD. C. Tsamatsoulis0Italcementi GroupBased on a dynamical model of the grinding process in closed circuit mills, efficient efforts have been made to optimize PID controllers of cement milling. The process simulation is combined with an autoregressive model of the errors between the actual process values and the computed ones. Long term industrial data have been used to determine the model parameters. The data include grinding of various cement types. The M - Constrained Integral Gain Optimization (MIGO) loop shaping method is utilized to determine PID sets satisfying a certain robustness constraint. The maximum sensitivity is considered as such a criterion. Both dynamical parameters and PID sets constitute the inputs of a detailed simulator which involves all the main process characteristics. The simulation is applied over all the PID sets aiming to find the parameter region that provides the minimum integral of absolute error, which functions as a performance criterion. For each cement type a PID set is selected and put in operation in a closed circuit cement mill. The performance of the regulation is evaluated after a sufficient time period, concluding that the developed design combining criteria of both robustness and performance leads to PID controllers of high efficiency.http://www.scielo.br/scielo.php?script=sci_arttext&pid=S0104-66322014000100015&lng=en&tlng=enDynamicsCementMillGrindingUncertaintyPIDRobustnessSimulation |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
D. C. Tsamatsoulis |
spellingShingle |
D. C. Tsamatsoulis Optimizing the control system of cement milling: process modeling and controller tuning based on loop shaping procedures and process simulations Brazilian Journal of Chemical Engineering Dynamics Cement Mill Grinding Uncertainty PID Robustness Simulation |
author_facet |
D. C. Tsamatsoulis |
author_sort |
D. C. Tsamatsoulis |
title |
Optimizing the control system of cement milling: process modeling and controller tuning based on loop shaping procedures and process simulations |
title_short |
Optimizing the control system of cement milling: process modeling and controller tuning based on loop shaping procedures and process simulations |
title_full |
Optimizing the control system of cement milling: process modeling and controller tuning based on loop shaping procedures and process simulations |
title_fullStr |
Optimizing the control system of cement milling: process modeling and controller tuning based on loop shaping procedures and process simulations |
title_full_unstemmed |
Optimizing the control system of cement milling: process modeling and controller tuning based on loop shaping procedures and process simulations |
title_sort |
optimizing the control system of cement milling: process modeling and controller tuning based on loop shaping procedures and process simulations |
publisher |
Brazilian Society of Chemical Engineering |
series |
Brazilian Journal of Chemical Engineering |
issn |
0104-6632 |
publishDate |
2014-03-01 |
description |
Based on a dynamical model of the grinding process in closed circuit mills, efficient efforts have been made to optimize PID controllers of cement milling. The process simulation is combined with an autoregressive model of the errors between the actual process values and the computed ones. Long term industrial data have been used to determine the model parameters. The data include grinding of various cement types. The M - Constrained Integral Gain Optimization (MIGO) loop shaping method is utilized to determine PID sets satisfying a certain robustness constraint. The maximum sensitivity is considered as such a criterion. Both dynamical parameters and PID sets constitute the inputs of a detailed simulator which involves all the main process characteristics. The simulation is applied over all the PID sets aiming to find the parameter region that provides the minimum integral of absolute error, which functions as a performance criterion. For each cement type a PID set is selected and put in operation in a closed circuit cement mill. The performance of the regulation is evaluated after a sufficient time period, concluding that the developed design combining criteria of both robustness and performance leads to PID controllers of high efficiency. |
topic |
Dynamics Cement Mill Grinding Uncertainty PID Robustness Simulation |
url |
http://www.scielo.br/scielo.php?script=sci_arttext&pid=S0104-66322014000100015&lng=en&tlng=en |
work_keys_str_mv |
AT dctsamatsoulis optimizingthecontrolsystemofcementmillingprocessmodelingandcontrollertuningbasedonloopshapingproceduresandprocesssimulations |
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