[1] |
岳勇, 陈雷, 姚强, 等. 燃煤锅炉颗粒物粒径分布和痕量元素富集特性实验研究[J]. 中国电机工程学报, 2005, 25(18):74-79. YUE Y, CHEN L, YAO Q, et al. Study on characteristics of particulate matter size distribution and trace elements enrichment in emission from a pulverized coal-fired boiler[J]. Proceedings of the CSEE, 2005, 25(18):74-79.
|
[2] |
中华人民共和国环境保护部. 火电厂大气污染物排放标准:GB 13223-2011[S]. 北京:中国标准出版社, 2015. Ministry of Environmental Protection of the People's Republic of China. Emission standard of air pollutants for thermal power plants:GB 13223-2011[S]. Beijing:Standards Press of China, 2015.
|
[3] |
中华人民共和国国家发展和改革委员会. 煤电节能减排升级与改造行动计划(2014~2020)[EB/OL].[2014-09-12]. http://www.Sdpc.gov.cn/gzdt/201409/t20140919_626240.html. National Development and Reform Commission. Transformation and upgrading of coal for energy conservation and emissions reduction plan of action (2014-2020)[EB/OL].[2014-09-12]. http://www.Sdpc.gov.cn/gzdt/201409/t20140919_626240.html.
|
[4] |
DURHAM M D, BUSTARD C J, MOSER R E, et al. Success with non-traditional flue gas conditioning for hot and cold-side ESPs[C]//A&WMA Specialty Conference on Mercury Emissions:Fate, Effects, and Control. America:Chemical Institute of America, 2001:1-9.
|
[5] |
魏凤, 张军营, 郑楚光, 等. 燃煤超细颗粒团聚模拟研究[J]. 工程热物理学报, 2005, 26(3):515-518. WEI F, ZHANG J Y, ZHENG C G, et al. Agglomeration simulation of sub-micro particles during coal combustion[J]. Journal of Engineering Thermophysics, 2005, 26(3):515-518.
|
[6] |
赵永椿, 张军营, 高全, 等. 燃煤超细颗粒物团聚促进机制的实验研究[J]. 化工学报, 2007, 58(11):2876-2881. ZHAO Y C, ZHANG J Y, GAO Q, et al. Experimental study on agglomeration of submicron particles from coal combustion[J]. Journal of Chemical Industry and Engineering (China), 2007, 58(11):2876-2881.
|
[7] |
刘勇, 赵汶, 杨林军, 等. 化学团聚促进电除尘脱除PM2.5的实验研究[J], 化工学报, 2014, 65(9):3611-3616. LIU Y, ZHAO W, YANG L J, et al. Improving removal of PM2.5 by electrostatic precipitator with chemical agglomeration[J]. CIESC Journal, 2014, 65(9):3611-3616.
|
[8] |
WALSH P M, MCCAIN J D, CUSHING K M. Evaluation and mitigation of visible acidic aerosol plumes from coal fired power boilers:EPA/600/R-06/156[R]. EPA, 2006.
|
[9] |
KAMATA H, OHARA H, TAKAHASHI K, et al. SO2 oxidation over the V2O5/TiO2 SCR catalyst[J]. Catalysis Letters, 2001, 73(1):79-83.
|
[10] |
SCHWAEMMLE T, HEIDEL B, BRECHTEL K, et al. Study of the effect of newly developed mercury oxidation catalysts on the DeNOx-activity and SO2-SO3 conversion[J]. Fuel, 2012, 101(6):179-186.
|
[11] |
潘丹萍, 吴昊, 姜业正, 等. 应用水汽相变促进湿法脱硫净烟气中PM2.5和SO3酸雾脱除的研究[J]. 燃料化学学报, 2016, 44(1):113-119. PAN D P, WU H, JIANG Y Z, et al. Improvement in removal of fine particles and SO3 acid mist from desulfurized flue gas with heterogeneous condensation[J]. Journal of Fuel Chemistry and Technology, 2016, 44(1):113-119.
|
[12] |
BRACHERT L, MERTENS J, KHAKHARIA P, et al. The challenge of measuring sulfuric acid aerosols:number concentration and size evaluation using a condensation particle counter (CPC) and an electrical low pressure impactor (ELPI+)[J]. Journal of Aerosol Science, 2014, 67(6):21-27.
|
[13] |
CAO Y, ZHOU H, JIANG W, et al. Studies of the fate of sulfur trioxide in coal-fired utility boilers based on modified selected condensation methods[J]. Environmental Science & Technology, 2010, 44(9):3429-3434.
|
[14] |
藤岛英胜, 土屋喜重, 西田定二, 等. 低低温EP適用による石炭火力用排煙処理システムの合理化設計[J]. 三菱重工技报, 1994, 31(4):247-251.
|
[15] |
SMITH R D. The trace element chemistry of coal during combustion and emission from coal-fired plants[J]. Energy Combust. Sci., 1980, 6(5):53-119.
|
[16] |
齐立强, 原永涛, 史亚微. 燃煤烟气中的SO3对微细颗粒物电除尘特性的影响[J]. 动力工程学报, 2011, 37(7):539-542. QI L Q, YUAN Y T, SHI Y W. Influence of SO3 on electrostatic precipitation of fine particles in flue gas[J]. Journal of Chinese Society of Power Engineering, 2011, 37(7):539-542.
|
[17] |
陈杰瑢. 环境工程技术手册[M]. 北京:科学出版社, 2008:56-59. CHENG J R. Environmental Engineering Technical Manuals[M]. Beijing:Science Press, 2008:56-59.
|
[18] |
熊桂龙, 李水清, 陈晟, 等. 增强PM2.5脱除的新型电除尘技术的发展[J], 中国电机工程学报, 2015, 35(9):2217-2223. XIONG G L, LI S Q, CHEN S, et al. Development of advanced electrostatic precipitation technologies for reducing PM2.5 emissions from coal-fired power plants[J]. Proceedings of the CSEE, 2015, 35(9):2217-2223.
|
[19] |
MITSUBISHI. Mitsubishi high efficiency system-ultimate solution for SO3, PM and mercury[R]. Japan:Mitsubishi, 2003.
|
[20] |
MOSER R E. SO3 impacts on plant O & M (Ⅰ)[J]. Power, 2005, 150(8):10-15.
|
[21] |
常景彩, 董勇, 王志强, 等. 燃煤烟气SO3转换吸收特性模拟实验[J]. 煤炭学报, 2010, (10):1717-1720. CHANG J C, DONG Y, WANG Z Q, et al. Simulation experiment of SO3 conversion and absorption characteristics in coal-fired flue gas[J]. Journal of China Coal Society, 2010, (10):1717-1720.
|
[22] |
BRACHERT L, KOCHENBURGER T, SCHABER K. Facing the sulfuric acid aerosol problem in flue gas cleaning:pilot plant experiments and simulation[J]. Aerosol Science and Technology, 2013, 47(10):1083-1091.
|
[23] |
SINANIS S, WIX A, ANA L, et al. Characterization of sulphuric acid and ammonium sulphate aerosols in wet flue gas cleaning processes[J]. Chemical Engineering and Processing:Process Intensification, 2008, 47(1):22-30.
|
[24] |
WEBER W, MORRIS J. Kinetics of adsorption on carbon from solution[J]. Fuel, 1963, 89(5):31-60.
|