Title :
Numerical Simulation of Simultaneous NO and SO2 Reduction by Reburning
Author :
Qian, Lin ; Sun, Shaozeng ; Sun, Rui ; Fei, Jun ; Yu, LeiBo ; Cao, Huali
Author_Institution :
Sch. of Energy Sci. & Eng., Harbin Inst. of Technol., Harbin, China
Abstract :
A reaction model including NO reduction by reburning with pulverized coal and SO2 absorption by CaO is presented. It includes the coal combustion model, which covers coal devolatilisation, combustion of volatiles, and combustion of char. The NO conversion model by reburning includes the formation of NO from fuel nitrogen and the reduction of NO by hydrocarbon, HCN, NH3 as well as char. Sulfation of CaO is controlled by solid state diffusion through the product layer. The model is validated by comparing the predicted NO and SO2 emissions with the measurements obtained from simultaneous NO/SO2 removal experiments in an entrained-flow reactor reburning with pulverized coal together with calcium-based sorbent CaO. Low SR is beneficial for NO reduction, but high SO2 reduction needs higher SR. It is suggested that the reburn fuel and Calcium-based sorbent CaO should be injected in different area to ensure high efficiencies of NO and SO2 reduction.
Keywords :
air pollution control; calcium compounds; charcoal; coal; combustion; nitrogen compounds; numerical analysis; pulverised fuels; reduction (chemical); sulphur compounds; CaO; NO; SO2; absorption; calcium-based sorbent; charcoal combustion; coal combustion model; coal devolatilisation; conversion model; entrained-flow reactor reburning; fuel nitrogen; hydrocarbon; numerical simulation; pulverized coal; reaction model; reburn fuel; solid state diffusion; volatile combustion; Coal; Combustion; Inductors; Mathematical model; Predictive models; Strontium;
Conference_Titel :
Power and Energy Engineering Conference (APPEEC), 2012 Asia-Pacific
Conference_Location :
Shanghai
Print_ISBN :
978-1-4577-0545-8
DOI :
10.1109/APPEEC.2012.6306952