[1] R.T. Guo, W.G. Pan, X.B. Zhang, J.X. Ren, Q. Jin, H.J. Xu, J. Wu, Removal of NO by using Fenton reagent solution in a lab-scale bubbling reactor, Fuel 90(2011) 3295-3298. [2] S. Yang, X. Pan, Z. Han, D. Zheng, J. Yu, P. Xia, B. Liu, Z. Yan, Nitrogen oxide removal from simulated flue gas by UV-irradiated sodium chlorite solution in a bench-scale scrubbing reactor, Ind. Eng. Chem. Res. 56(2017) 3671-3678. [3] X. Lu, C. Song, S. Jia, Z. Tong, X. Tang, Y. Teng, Low-temperature selective catalytic reduction of NOx with NH3 over cerium and manganese oxides supported on TiO2-graphene, Chem. Eng. J. 260(2015) 776-784. [4] J. Zuo, Z. Chen, F. Wang, Y. Yu, L. Wang, X. Li, Low-temperature selective catalytic reduction of NOx with NH3 over novel Mn-Zr mixed oxide catalysts, Ind. Eng. Chem. Res. 53(2014) 2647-2655. [5] S. Teodoru, Y. Kusano, A. Bogaerts, The effect of O2 in a humid O2/N2/NOx gas mixture on NOx and N2O remediation by an atmospheric pressure dielectric barrier discharge, Plasma Process. Polym. 9(2012) 652-689. [6] M. Baeva, H. Gier, A. Pott, J. Uhlenbusch, J. Höschele, J. Steinwandel, Studies on gas purification by a pulsed microwave discharge at 2.46 GHz in mixtures of N2/NO/O2 at atmospheric pressure, Plasma Chem. Plasma Process. 21(2001) 225-247. [7] F. Rehman, W.S.A. Majeed, W.B. Zimmerman, Hydrogen production from water vapor plasmolysis using DBD-Corona hybrid reactor, Energy Fuel 27(2013) 2748-2761. [8] Y.R. Li, X. Zhang, L. Yang, J.X. He, X.J. Min, Y.J. Fan, X.X. Ma, Effects of sodium additives on NO removal of urea by dielectric barrier-corona discharge coupling method, Chem. Ind. Eng. Progress 37(2018) 1978-1984. [9] S. Masuda, H. Nakao, Control of NOx by positive and negative pulsed corona discharges, IEEE Trans. Ind. Appl. 26(1990) 374-383. [10] J. Chen, J.H. Davidson, Model of the negative DC corona plasma:comparison to the positive DC corona plasma, Plasma Chem. Plasma Process. 23(2003) 83-102. [11] M. Dors, J. Mizeraczyk, T. Czech, M. Rea, Removal of NOx by DC and pulsed corona discharges in a wet electrostatic precipitator model, J. Electrost. 45(1998) 25-36. [12] T. Takaki, T. Fujiwara, J. Naito, T. Sato, Improvement of stability for NO removal in multipoint barrier discharge reactor by pulse applied voltage, J. Adv. Oxid. Technol. 17(2014) 239-248. [13] B. Rajanikanth, S. Mohapatro, Studies on NOx removal from diesel engine exhaust using duct type DBD reactor, IEEE Trans. Ind. Appl. 51(2015) 2489-2496. [14] Y. Liu, W. Zong, H. Xiao, X. Gao, B. Sun, Z. Chen, The experimental research of NO removal by dielectric barrier discharge at atmospheric pressure, 20103rd International Conference on Computer and Electrical Engineering (ICCEE 2010), 2012. [15] S. Yanzhou, Q. Yuchang, Y. Fashan, Y. Xingcheng, Application of DBD and DBCD in SO2 removal, Plasma Sci. Technol. 6(2004) 2589-2592. [16] D.B. Kim, J.K. Rhee, S.Y. Moon, W. Choe, Study of geometrical and operational parameters controlling the low frequency microjet atmospheric pressure plasma characteristics, Appl. Phys. Lett. 89(2006), 061502. [17] H. Miessner, K.P. Francke, R. Rudolph, T. Hammer, NOx removal in excess oxygen by plasma-enhanced selective catalytic reduction, Catal. Today 75(2002) 325-330. [18] J. Niu, X. Yang, A. Zhu, L. Shi, Q. Sun, Y. Xu, C. Shi, Plasma-assisted selective catalytic reduction of NOx by C2H2 over Co-HZSM-5 catalyst, Catal. Commun. 7(2006) 297-301. [19] Y.S. Mok, J.H. Kim, I.S. Nam, S.W. Ham, Removal of NO and formation of byproducts in a positive-pulsed corona discharge reactor, Ind. Eng. Chem. Res. 39(2000) 3938-3944. [20] T. Wang, B. Sun, Effect of temperature and relative humidity on NOx removal by dielectric barrier discharge with acetylene, Fuel Process. Technol. 144(2016) 109-114. [21] H. Pan, Q. Yan, Promotion of non-thermal plasma on catalytic reduction of NOx by C3H8 over Co/BEA catalyst at low temperature, Plasma Chem. Plasma Process. 34(2014) 811-824. [22] X.Q. Wang, W. Chen, Q.P. Guo, Y. Li, G.H. Lv, X.P. Sun, X.H. Zhang, K.C. Feng, S.Z. Yang, Characteristics of NOx removal combining dielectric barrier discharge plasma with selective catalytic reduction by C2H5OH, J. Appl. Phys. 106(2009), 013309. [23] H. Lin, X. Gao, Z. Luo, K. Cen, Z. Huang, Removal of NOx with radical injection caused by corona discharge, Fuel 83(2004) 1349-1355. [24] G. Qi, R.T. Yang, A superior catalyst for low-temperature NO reduction with NH3, Chem. Commun. 34(2003) 848-849. [25] J.J. Lowke, R. Morrow, Theoretical analysis of removal of oxides of sulphur and nitrogen in pulsed operation of electrostatic precipitators, IEEE Trans. Plasma Sci. 23(1995) 661-671. [26] J. An, Y. Jiang, Z. Zhang, X. Ma, T. Wang, K. Shang, J. Li, Oxidation characteristics of mixed NO and Hg0 in coal-fired flue gas using active species injection generated by surface discharge plasma, Chem. Eng. J. 288(2016) 298-304. [27] C.R. McLarnon, B.M. Penetrante, Effect of gas composition on the NOx conversion chemistry in a plasma, Office of Scientific & Technical Information Technical Reports, 10, 1998, pp. 19-22. [28] H. Lin, X. Gao, Z. Luo, K. Cen, M. Pei, Z. Huang, Removal of NOx from wet flue gas by corona discharge, Fuel 83(2004) 1251-1255. [29] M. Männikkö, M. Skoglundh, H.H. Ingelsten, Selective catalytic reduction of NOx with methanol over supported silver catalysts, Appl. Catal. B Environ. 119-120(2012) 256-266. [30] D. Xie, Y. Sun, T. Zhu, L. Ding, Removal of NO in mist by the combination of plasma oxidation and chemical absorption, Energy Fuel 30(2016) 5071-5076. [31] Z. Yan, L. Chen, H. Wang, Hydrogen generation by glow discharge plasma electrolysis of ethanol solutions, J. Phys. D. Appl. Phys. 41(2008), 155205. [32] Y. Han, J.G. Wang, D.G. Cheng, C.J. Liu, Density functional theory study of methanol conversion via cold plasmas, Ind. Eng. Chem. Res. 45(2006) 3460-3467. [33] S. Tamm, H.H. Ingelsten, M. Skoglundh, A.E.C. Palmqvist, Mechanistic aspects of the selective catalytic reduction of NOx by dimethyl ether and methanol over γ-Al2O3, J. Catal. 276(2010) 402-411. [34] P. Kyriienko, N. Popovych, S. Soloviev, S. Orlyk, S. Dzwigaj, Remarkable activity of Ag/Al2O3/cordierite catalysts in SCR of NO with ethanol and butanol, Appl. Catal. B Environ. 140(2013) 691-699. [35] Y. Yu, Y. Li, X. Zhang, H. Deng, H. He, Y. Li, Promotion effect of H2 on ethanol oxidation and NOx reduction with ethanol over Ag/Al2O3 catalyst, Environ. Sci. Technol. 49(2014) 481-488. [36] F. Gunnarsson, J.A. Pihl, T.J. Toops, M. Skoglundh, H. Härelind, Lean NOx reduction over Ag/alumina catalysts via ethanol-SCR using ethanol/gasoline blends, Appl. Catal. B Environ. 202(2016) 42-50. [37] J. Chung, M. Cho, B. Son, Y. Mok, W. Namkung, Study on reduction of energy consumption in pulsed corona discharge process for NOx removal, Plasma Chem. Plasma Process. 20(2000) 495-509. [38] G. Dayma, K.H. Ali, P. Dagaut, Experimental and detailed kinetic modeling study of the high pressure oxidation of methanol sensitized by nitric oxide and nitrogen dioxide, Proc. Combust. Inst. 31(2007) 411-418. [39] I. Jogi, K. Erme, J. Raud, M. Laan, Oxidation of NO by ozone in the presence of TiO2 catalyst, Fuel 173(2016) 45-51. |