PID-controller with predictor and auto-tuning algorithm: study of efficiency for thermal plants


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Resumo

The problem of efficiency estimation of an automatic control system (ACS) with a Smith predictor and PID-algorithm for thermal plants is considered. In order to use the predictor, it is proposed to include an auto-tuning module (ATC) into the controller; the module calculates parameters for a second-order plant module with a time delay. The study was conducted using programmable logical controllers (PLC), one of which performed control, ATC, and predictor functions. A simulation model was used as a control plant, and there were two variants of the model: one of them was built on the basis of a separate PLC, and the other was a physical model of a thermal plant in the form of an electrical heater. Analysis of the efficiency of the ACS with the predictor was carried out for several variants of the second order plant model with time delay, and the analysis was performed on the basis of the comparison of transient processes in the system when the set point was changed and when a disturbance influenced the control plant. The recommendations are given on correction of the PID-algorithm parameters when the predictor is used by means of using the correcting coefficient k for the PID parameters. It is shown that, when the set point is changed, the use of the predictor is effective taking into account the parameters correction with k = 2. When the disturbances influence the plant, the use of the predictor is doubtful, because the transient process is too long. The reason for this is that, in the neighborhood of the zero frequency, the amplitude-frequency characteristic (AFC) of the system with the predictor has an ascent in comparison with the AFC of the system without the predictor.

Sobre autores

V. Kuzishchin

Moscow Power Engineering Institute

Autor responsável pela correspondência
Email: Kuzishchinv@yandex.ru
Rússia, Moscow, 111250

E. Merzlikina

Moscow Power Engineering Institute

Email: Kuzishchinv@yandex.ru
Rússia, Moscow, 111250

Van Hoang

Moscow Power Engineering Institute

Email: Kuzishchinv@yandex.ru
Rússia, Moscow, 111250


Declaração de direitos autorais © Pleiades Publishing, Inc., 2017

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