Title :
Loop priority based decentralized control for coal ball mill system
Author :
Luo, Yunhui ; Liu, Hongbo ; Jia, Lei ; Wang, Lei
Author_Institution :
Sch. of Control Sci. & Eng., Shandong Univ., Jinan, China
Abstract :
Coal ball mill pulverizing system is a multiple-input multiple-output (MIMO) system characterized with strong couplings and disturbances. In the coal ball mill control system, the three loops possess different dynamics with remarkable lag times. In this paper, we proposed a mixed control scheme based on loop priority (namely the outlet temperature loop, the inlet pressure loop, the pressure difference loop) considering the principle of the safe-stability-quality. The outlet temperature loop employees the feedforward compensation to suppress the interaction from the other two loops; the inlet pressure loop uses the disturbance observer based structure to eliminate internal and external disturbances because the characteristics of the fast response from recycling air flow rate to the inlet pressure is fit to cancel the estimated disturbances; The pressure difference loop controller is designed based on the dominant internal disturbance since it has the lowest priority. The three loop controllers are all in the form of two-degrees-of-freedom PID in order to get a better trade-off between set-point tracking and disturbance rejection. The proposed approach can maintain stable operation of the ball mill, and it is readily available to industrial practitioners and DCS software. Simulation results demonstrate the effectiveness of this control strategy.
Keywords :
MIMO systems; ball milling; coal; compensation; control engineering computing; decentralised control; feedforward; pressure control; production engineering computing; stability; temperature control; three-term control; DCS software; MIMO system; air flow rate recycling; coal ball mill control system; coal ball mill pulverizing system; decentralized control; disturbance observer; disturbance rejection; feedforward compensation; inlet pressure loop; loop priority; mixed control scheme; multiple-input multiple-output system; outlet temperature loop; pressure difference loop; safe-stability-quality; set-point tracking; two-degrees-of-freedom PID; Biological system modeling; Feedforward neural networks; Mathematical model; Particle separators; Powders; Temperature control; Transfer functions; Multivariable control system; PID control; ball mill; decentralized control; loop priority;
Conference_Titel :
Intelligent Control and Automation (WCICA), 2010 8th World Congress on
Conference_Location :
Jinan
Print_ISBN :
978-1-4244-6712-9
DOI :
10.1109/WCICA.2010.5554325