TY - JOUR
T1 - Simulation study on 660 MW coal-fired power plant coupled with a steam ejector to ensure NOx reduction ability
AU - Chen, Weixiong
AU - Zhang, Guozhu
AU - Li, Bingxin
AU - Liu, Ming
AU - Liu, Jiping
N1 - Publisher Copyright:
© 2016 Elsevier Ltd
PY - 2017/1/25
Y1 - 2017/1/25
N2 - A 660 MW supercritical coal-fired power plant coupled with a steam ejector is proposed to increase the feedwater temperature, which is used to ensure the NOx reduction ability under a low load. The simulation work for the system performance under different steam sources of feedwater heater, feedwater regenerative heating systems and steam sources of steam ejector is carried out. Results indicate that it's a favorable choice to increase the water temperature through adding No. 0 feedwater heater coupled with steam ejector, because NOx removal efficiency increases from 68.97% (benchmark condition) to 74.66% under 50% THA condition, and it would improve the plant thermal efficiency while the standard coal consumption rate would decrease 0.5 g (kW h)−1. Meanwhile, results conclude that it has superior performance than the system by No. 1 feedwater heater coupled with steam ejector. Finally, it's found that it is more suitable when the primary flow is from the platen superheater outlet. It also finds that the system performance (the induced flow is from No. 1 steam extraction) is more efficient compared with systems that the induced flow is from the cold or hot reheat steam.
AB - A 660 MW supercritical coal-fired power plant coupled with a steam ejector is proposed to increase the feedwater temperature, which is used to ensure the NOx reduction ability under a low load. The simulation work for the system performance under different steam sources of feedwater heater, feedwater regenerative heating systems and steam sources of steam ejector is carried out. Results indicate that it's a favorable choice to increase the water temperature through adding No. 0 feedwater heater coupled with steam ejector, because NOx removal efficiency increases from 68.97% (benchmark condition) to 74.66% under 50% THA condition, and it would improve the plant thermal efficiency while the standard coal consumption rate would decrease 0.5 g (kW h)−1. Meanwhile, results conclude that it has superior performance than the system by No. 1 feedwater heater coupled with steam ejector. Finally, it's found that it is more suitable when the primary flow is from the platen superheater outlet. It also finds that the system performance (the induced flow is from No. 1 steam extraction) is more efficient compared with systems that the induced flow is from the cold or hot reheat steam.
KW - Flue gas temperature
KW - Plant thermal efficiency
KW - Steam ejector
UR - https://www.scopus.com/pages/publications/84989177865
U2 - 10.1016/j.applthermaleng.2016.09.104
DO - 10.1016/j.applthermaleng.2016.09.104
M3 - 文章
AN - SCOPUS:84989177865
SN - 1359-4311
VL - 111
SP - 550
EP - 561
JO - Applied Thermal Engineering
JF - Applied Thermal Engineering
ER -