[1]
Boardman R D and da ICHE Smoot L Journal, 1988: 1573. Bowman t. C.
Google Scholar
[2]
Jiang Yong, Xia mingming Qinshaoliang, etc. Inhibition of type thermal NOx [J]. Power system engineering. 2005, 21 (2) : 3. in Chinese.
Google Scholar
[3]
Hayhurst A M, Vince I M. P rog. Energy Comb. Sci., 1980, 5: 35.
Google Scholar
[4]
Glarborg P, Miller J A, Kee R j. k. inetic Modeling and Sensitivity Analysis of Nitrogen Oxide Formation in Well - stirred Reactors [J]. J Combust. Flame, 1986, 65: 177-202.
DOI: 10.1016/0010-2180(86)90018-0
Google Scholar
[5]
Su Yaxin. Coal nox emission control technology [M]. Chemical industry press, 2005. in Chinese.
Google Scholar
[6]
Chen Meiqian, He boshu. The analysis method of ammonia removal of gaseous pollutants in flue gas applications [J]. Journal of northern jiaotong university, 2003, 27 (4) : 69-74. in Chinese.
Google Scholar
[7]
Cheng Hui, Xieyonggang Zhu guorong. Coal-fired power plant flue gas denitration technology development trend of [J]. Journal of zhejiang electric power, 2005, 2: 38-50. in Chinese.
Google Scholar
[8]
Wu Bijun, Liu xiaoqin. The research progress of low carbon hydrocarbon selective catalytic reduction of NO [J]. Electric power environmental protection, 2004, 20 (4) : 21-24. in Chinese.
Google Scholar
[9]
TaiDerong. Electron beam flue gas desulfurization technology industrial demonstration project progress [J]. Journal of environmental science, 1999, 7 (2) : 125-135. in Chinese.
Google Scholar
[10]
Qiu Hongen, Wu dan Wang rui. The flue gas desulfurization denitration technology progress [J]. in Chinese.
Google Scholar
[11]
Bai Xiyao, Bai min, Han hui, etc. The strong electric field ionization discharge desulfurization study [J], environment pollution and the prevention and control, 2002, 24 (5) : 257-260. in Chinese.
Google Scholar