1 Qian, B.Z., “Development prospect on technology of cleaner coalfired emission reduction”, China environmental Protection Industry, 10, 60-62(2008).(in Chinese) 2 Ministry of Environmental Protection of the People’s Republic of China, The Environment Status Communique of China in 2009, 2009 [2010-06-03], http://www.mep.gov.cn/gkml/hbb/qt/201008/tz010827 193813.htm.(in Chinese) 3 Pillai, K.C., Chung, S.J., Raju, T., Moon, I.S., “Experimental aspects of combined NOx and SO2 removal from flue-gas mixture in an integrated wet scrubber-electrochemical cell system”, Chemosphere, 76(5),657-664(2009). 4 Wang, Y.S., Ji, X.L., “Technology of desulfurization, denitrogenation and dust removal by pulsed corona plasma”, Environmental Science of Shanghai, 19(1), 17-19(2000).(in Chinese) 5 Zhao, J.K., Ren, X.W., Wang, B.J., Zhu, Z.L., “Flue gas deSO2/deNOx progress by PPCP”, Environmental of Sichuan, 19(4), 6-8(2000).(in Chinese) 6 Wang, G.J., Ma, Z., Qin, Y.N., Qi, X.Z., Wang, Y.C., “Review of application of plasma technology in flue gas desulfurization”, Chem. Ind. Eng., 24(3), 266-271(2007).(in Chinese) 7 Kawada, Y., Kaneko, T., Ito, T., Chang, J.S., “Simultaneous removal of aerosol particles, NO x and SO2 , from incense smokes by a DC electrostatic precipitator with dielectric barrier discharge rechargers”, J. Phys. D Appl. Phys., 35(16), 1961-1966(2002). 8 Clements, J.S., Mizuno, A., Finney, W.C., Davis, R.H., “Combined removal of SO2/NO x and fly ash from simulated flue gas using pulsed streamer corona”, IEEE Trans. Ind. Appl., 25(1), 62-69(1989). 9 Mizuno, A., Clements, J.S., Davis, R.H., “A method for the removal of sulfur dioxide from exhaust gas utilizing pulsed streamer corona for electron energization”, IEEE Trans. Ind. Appl., IA-22(3), 516-522(1986). 10 Masuda, S., “Pulse corona induced plasma chemical process: a horizon of new plasma chemical technologies”, Pure Appl. Chem., 60(5), 727-731(1988). 11 Yamamoto, T., Yang, C. L., Beltran, M. R. Kravets, Z., “PlasmaAssisted Chemical Process for NOx Control”, IEEE Trans. Ind. Appl., 36(3), 923-927(2000). 12 Yan, K.P., Li R.N., Zhu, T.L., Zhang, H.D., Hu, X.T., Jiang, X.D., Liang, H., Qiu, R.C., Wang, Y., “A semi-wet technological process for flue gas desulfurization by corona discharges at an industrial scale”, Chem. Eng., 116(2), 139-147(2006). 13 Ministry of Environmental Protection of the People’s Republic of China, Determination of Sulphur Dioxide from Exhausted Gas of Stationary Source: Iodine Titration Method, HJ/T 56-2000, China Environmental Science Press, Beijing(2000). 14 van Veldhuizen, E.M., Zhou, L.M., Rutgers, W.R., “Combined effects of pulsed discharge removal of NO, SO2 , and NH3 from flue gas”, Plasma Chem. Plasma Process., 18(1), 91-111(1998). 15 Yu, Q., Yang, H.M., Zeng, K.S., Zhang, Z.W., Yu, G., “Simultaneous removal of NO and SO2 from dry gas stream using non-thermal plasma”, Environ. Sci., 19(11), 1393-1397(2007). 16 Xu, F., Luo, Z.Y., Cao, W., Wang, P., Wei, B., Gao, X., Fang, M.X., Cen, K., “Simultaneous oxidation of NO, SO2 and Hg0 from flue gas by pulsed corona discharge”, Environ. Sci., 21(3), 328-332(2009). 17 Wu, Y., Li, J., Wang, N.H., Li, G.F., “Industrial experiments on desulfurization of flue gases by pulsed corona induced plasma chemical process”, J. Electrostat., 57(3/4), 233-241(2003). 18 Chang, M.B., Kushner, M.J., Rood, M.J., “Removal of SO2 and NO from simulated flue gas streams using dielectric barrier discharge plasmas”, Plasma Chem. Plasma Process., 12(4), 565-580(1992). 19 Bausach, M., Pera-Titus, M., Fite, C., Cunill, F., Izquierdo, J.F., Tejero, J., Iborra, M., “Water-induced rearrangement of Ca(OH)2(0001) surfaces reacted with SO2”, AIChE J., 52(8), 2876-2886(2006). 20 Hao, J.M., Ma, G.D., Air Pollution Control Engineering, 2nd edition., Higher Education Press, Beijing, 320-340(2002).(in Chinese) 21 Liu, C.F., Shih, S.M., “Effects of flue gas components on the reaction of Ca(OH)2 with SO2”, Ind. Eng. Chem. Res., 45(26), 8765–8769(2006). 22 Wu, Y., Wang, N.H., Zhu, Y.M., Zhang, Y.B., “SO2 removal from industrial flue gases using pulsed corona discharge”, J. Electrostat., 44(1-2), 11-16(1998). 23 Mok, Y.S., Lee, H.W., Hyun, Y.J., Ham, S.W., Kim, J.H., Nam, I.S., “Removal of NO and SO2 by pulsed corona discharge process”, Korean J. Chem. Eng., 18(3), 308-316(2001). 24 Huang, L.W. and Matsuda, H., “Removal of NO by a pulsed-corona reactor combined with in situ absorption”, AIChE J., 50(11), 2676-2681(2004). 25 Sathiamoorthy, G., Kalyana, S., Finney, W.C., Clark, R.J., Locke, B.R., “Chemical reaction kinetics and reactor modeling of NOx removal in a pulsed streamer corona discharge reactor”, Ind. Eng. Chem. Res., 38(5), 1844-1855(1999). 26 Klingshirn, C., “ZnO: Material, physics and applications”, ChemPhys Chem, 8(6), 782-803(2007). 27 Wang, Y., Hu, L.S., Liu, X.W., Lu, Y.P., “Metal oxide sorbent-catalyst for combined removing SO2 and NOx from flue gas”, Electric Power Environmental Protection, 25(5), 18-21(2009).(in Chinese) 28 Li, H.J., Zhu, T., Zhao, D.F., Zhang, Z.F., Chen, Z.M., “Kinetics and mechanisms of heterogeneous reaction of NO2 on CaCO3 surfaces under dry and wet conditions”, Atmos. Chem. Phys. Discuss., 10(2), 463-474(2010). 29 Rodriguez, J.A., Jirsak, T., Dvorak, J., Sambasivan, S., Fischer, D., “Reaction of NO2 with Zn and ZnO: Photoemission, XANES, and density functional studies on the formation of NO3”, J. Phys. Chem. B, 104(2), 319-328(2000). |