Title :
Analysis of heat-absorbing of drum boiler superheater based on path analysis
Author :
Qu Ya-xin ; Liu Ji-zhen ; Chang Tai-hua ; Tian Liang
Author_Institution :
Dept. of Autom., North China Electr. Power Univ., Beijing, China
Abstract :
Aimed at the current main steam temperature control problem caused by the burning disturbances which is followed by the coal-fired units involved in peak regulation and frequency modulation, analyzed the shortcomings of the existing solutions and proposed path analysis modeling which can effectively combine the mechanism analysis results for the superheater absorption state reconstruction. Center height signals of the flame was structured, meanwhile introduced the coal factor, excess air, heat signal as the middle layer of variables, and the superheater enthalpy expectations path analysis model has been established and tested. The results show that the model has a great accuracy of prediction, better to reveal the influence of state parameters to the superheater heat-absorbing during combustion process, and be of a great reference value for the boiler combustion system optimization.
Keywords :
boilers; combustion; enthalpy; heat transfer; temperature control; boiler combustion system optimization; burning disturbance; coal factor; coal-fired unit; drum boiler superheater; flame center height signal; frequency modulation; heat-absorbing analysis; peak regulation; steam temperature control problem; superheater absorption state reconstruction; superheater enthalpy expectation path analysis; superheater heat-absorbing; Absorption; Boilers; Cause effect analysis; Combustion; Fires; Frequency modulation; Predictive models; Signal analysis; Temperature control; Testing; drum boiler; enthalpy increment; flame central height; path analysis model; superheater;
Conference_Titel :
Computer and Automation Engineering (ICCAE), 2010 The 2nd International Conference on
Conference_Location :
Singapore
Print_ISBN :
978-1-4244-5585-0
Electronic_ISBN :
978-1-4244-5586-7
DOI :
10.1109/ICCAE.2010.5451362