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Journal of Zhejiang University SCIENCE A 2009 Vol.10 No.3 P.423-433

http://doi.org/10.1631/jzus.A0820345


Quantum chemical study on the catalytic mechanism of Na/K on NO-char heterogeneous reactions during the coal reburning process


Author(s):  Zheng-cheng WEN, Zhi-hua WANG, Jun-hu ZHOU, Ke-fa CEN

Affiliation(s):  State Key Laboratory of Clean Energy Utilization, Zhejiang University, Hangzhou 310027, China

Corresponding email(s):   giani@zju.edu.cn, wangzh@zju.edu.cn

Key Words:  Catalytic mechanism, Quantum chemistry, Sodium, Potassium, Char, NO


Zheng-cheng WEN, Zhi-hua WANG, Jun-hu ZHOU, Ke-fa CEN. Quantum chemical study on the catalytic mechanism of Na/K on NO-char heterogeneous reactions during the coal reburning process[J]. Journal of Zhejiang University Science A, 2009, 10(3): 423-433.

@article{title="Quantum chemical study on the catalytic mechanism of Na/K on NO-char heterogeneous reactions during the coal reburning process",
author="Zheng-cheng WEN, Zhi-hua WANG, Jun-hu ZHOU, Ke-fa CEN",
journal="Journal of Zhejiang University Science A",
volume="10",
number="3",
pages="423-433",
year="2009",
publisher="Zhejiang University Press & Springer",
doi="10.1631/jzus.A0820345"
}

%0 Journal Article
%T Quantum chemical study on the catalytic mechanism of Na/K on NO-char heterogeneous reactions during the coal reburning process
%A Zheng-cheng WEN
%A Zhi-hua WANG
%A Jun-hu ZHOU
%A Ke-fa CEN
%J Journal of Zhejiang University SCIENCE A
%V 10
%N 3
%P 423-433
%@ 1673-565X
%D 2009
%I Zhejiang University Press & Springer
%DOI 10.1631/jzus.A0820345

TY - JOUR
T1 - Quantum chemical study on the catalytic mechanism of Na/K on NO-char heterogeneous reactions during the coal reburning process
A1 - Zheng-cheng WEN
A1 - Zhi-hua WANG
A1 - Jun-hu ZHOU
A1 - Ke-fa CEN
J0 - Journal of Zhejiang University Science A
VL - 10
IS - 3
SP - 423
EP - 433
%@ 1673-565X
Y1 - 2009
PB - Zhejiang University Press & Springer
ER -
DOI - 10.1631/jzus.A0820345


Abstract: 
Quantum chemical simulation was used to investigate the catalytic mechanism of Na/K on NO-char heterogeneous reactions during the coal reburning process. Both NO-char and NO-Na/K reactions were considered as three-step processes in this calculation. Based on geometry optimizations made using the UB3LYP/6-31G(d) method, the activation energies of NO-char and NO-Na/K reactions were calculated using the QCISD(T)/6-311G(d, p) method; Results showed that the activation energy of the NO-Na/K reaction (107.9/82.0 kJ/mol) was much lower than that of the NO-char reaction (245.1 kJ/mol). The reactions of NaO/KO and Na2O/K2O reduced by char were also studied, and their thermodynamics were calculated using the UB3LYP/6-31G(d) method; Results showed that both Na and K can be refreshed easily and rapidly by char at high temperature during the coal reburning process. Based on the calculations and analyses, the catalytic mechanism of Na/K on NO-char heterogeneous reactions during the coal reburning process was clarified.

Darkslateblue:Affiliate; Royal Blue:Author; Turquoise:Article

Reference

[1] Aarna, I., Suuberg, E.M., 1997. A review of the kinetics of the nitric oxide-carbon reaction. Fuel, 76(6):475-491.

[2] Andersson, S., Marković, N., Nyman, G., 2003. Computational studies of the kinetics of the C+NO and O+CN reactions. The Journal of Physical Chemistry A, 107(28):5439-5447.

[3] Arenillas, A., Josea, J.P., 2002. Nitric oxide reduction in coal combustion: role of char surface complexes in heterogeneous reactions. Environmental Science & Technology, 36(24):5498-5503.

[4] Becke, A.D., 1993. Density functional thermochemistry III. The role of exact exchange correlation functions. The Journal of Chemical Physics, 98(7):5648-5652.

[5] Chambrion, P., Suzuki, T., Zhang, Z.G., 1996. XPS of nitrogen-containing functional groups formed during the C-NO reaction. Energy and Fuels, 11(3):681-685.

[6] Chen, N., Yang, R.T., 1998. Ab initio molecular orbital study of the unified mechanism and pathways for gas-carbon reactions. The Journal of Physical Chemistry A, 102(31):6348-6356.

[7] Chen, W.Y., Ma, L., 1997. Effect of heterogeneous mechanisms during reburning of nitrogen oxide. AIChE Journal, 42(7):1968-1976.

[8] Foresman, J.B., Frisch, A., 1996. Exploring Chemistry with Electronic Structure Methods (2nd Ed.). Gaussian, Pittsburgh, PA.

[9] Frisch, M.J., Trucks, G.W., Pople, J.A., Schlegel, H.B., Scuseria, G.E., Robb, M.A., Cheeseman, J.R., Montgomery, J.A., Vreven, J.T., Kudin, K.N., et al., 2003. Gaussian 03. Gaussian, Inc., Pittsburgh, PA.

[10] García-García, A., Illán-Gómez, M.J., Linares-Solano, A., Salinas-Martínez de Lecea, C., 1997. Potassium-containing briquetted coal for the reduction of NO. Fuel, 76(6):499-505.

[11] García-García, A., Illán-Gómez, M.J., Linares-Solano, A., Salinas-Martínez de Lecea, C., 2002. NOx reduction by potassium-containing coal briquettes: Effect of preparation procedure and potassium content. Energy and Fuels, 16(3):569-574.

[12] Gauss, J., Cremer, C., 1988. Analytical evaluation of energy gradients in quadratic configuration interaction theory. Chemical Physics Letters, 150(3-4):280-286.

[13] Gonzalez, C., Schlegel, H.B., 1989. An improved algorithm for reaction path following. The Journal of Chemical Physics, 90(4):2154-2159.

[14] Hampartsoumian, E., Folayan, O.O., Nimmo, W., 2003. Optimisation of NOx reduction in advanced coal reburning systems and the effect of coal type. Fuel, 82(4):373-384.

[15] Illán-Gómez, M.J., Raymundo-Piñero, E., García-García, A., Linares-Solano, A., Salinas-Martínez de Lecea, C., 1999. Catalytic NOx reduction by carbon supporting metals. Applied Catalysis B: Environmental, 20(4):267-275.

[16] Illán-Gómez, M.J., Brandán, S., Linares-Solano, A., Salinas-Martínez de Lecea, C., 2000. NOx reduction by carbon supporting potassium-bimetallic catalysts. Applied Catalysis B: Environmental, 25(1):11-18.

[17] Illán-Gómez, M.J., Brandán, S., Salinas-Martínez de Lecea, C., Linares-Solano, A., 2001. Improvements in NOx reduction by carbon using bimetallic catalysts. Fuel, 80(14):2001-2005.

[18] Kyotani, T., Tomita, A., 1999. Analysis of the reaction of carbon with NO/N2O using Ab initio molecular orbital theory. The Journal of Physical Chemistry B, 103(17):3434-3441.

[19] Lee, C., Yang, W., Parr, R.G., 1988. Development of the Colle-Salvetti correlation-energy formula into a functional of the electron density. Physical Review B, 37(2):785-789.

[20] Liu, H., Hampartsoumian, E., Gibbs, B.M., 1997. Evaluation of the optimal fuel characteristics for efficient NO reduction by coal reburning. Fuel, 76(11):985-993.

[21] Maly, P.M., Zamansky, V.M., Locho, R.P., 1999. Alternative fuel reburning. Fuel, 78(3):327-334.

[22] Moyeda, D.K., Li, B., Maly, P., 1995. Experimental/Modeling Studies of the Use of Coal-based Reburning Fuels for NOx Control. 12th International Pittsburgh Coal Conference, the Combustion Institute, Pittsburgh, USA, p.1119-1124.

[23] Noda, K., Chambrion, P., Kyotani, T., Tomita, A., 1999. A study of the N2 formation mechanism in carbon-N2O reaction by using isotope gases. Energy and Fuels, 13(4):941-946.

[24] Salter, E.A., Trucks, G.W., Bartlett, R.J., 1989. Analytic energy derivatives in many-body methods: First derivatives. The Journal of Chemical Physics, 90(3):1752-1766.

[25] Scott, A.P., Random, L., 1996. Harmonic vibrational frequencies: an evaluation of Hartree-Fock, Moller-Plesset, quadratic configuration interaction, density functional theory, and semiempirical scale factors. The Journal of Physical Chemistry, 100(41):16502-16513.

[26] Smoot, L.D., Hill, S.C., Xu, H., 1998. NOx control through reburning. Progress in Energy and Combustion on Science, 24(5):385-408.

[27] Suzuki, T., Kyotani, T., Tomita, A., 1994. Study on the carbon-nitric oxide reaction in the presence of oxygen. Industrial & Engineering Chemistry Research, 33(11):2840-2845.

[28] Takuwa, T., Naruse, I., 2007. Detailed kinetic and control of alkali metal compounds during coal combustion. Fuel Processing Technology, 88(11-12):1029-1034.

[29] Wang, Z.H., Zhou, J.H., Wen, Z.C., Cen, K.F., 2007. Effect of mineral matter on NO reduction in coal reburning process. Energy and Fuels, 21(4):2038-2043.

[30] Yang, J., Mestl, G., Herein, D., 2000. Reaction of NO with carbonaceous materials1: 1. Reaction and adsorption of NO on ashless carbon black. Carbon, 38(5):715-727.

[31] Zhao, Z.B., Li, W., Li, B.Q., 2002a. Catalytic reduction of NO by coal chars loaded with Ca and Fe in various atmospheres. Fuel, 81(11-12):1559-1564.

[32] Zhao, Z.B., Li, W., Qiu, J.S., Li, B.Q., 2002b. Catalytic effect of Na-Fe on NO-char reaction and NO emission during coal char combustion. Fuel, 81(18):2343-2348.

[33] Zhao, Z.B., Qiu, J.S., Wen L., Li, B.Q., 2003. Influence of mineral matter in coal on decomposition of NO over chars and emissions of NO during char combustion. Fuel, 82(8):949-957.

[34] Zhong, B.J., Tang, H., 2007. Catalytic effect NO reduction at high temperature by de-ashed chars with catalysts. Combustion and Flame, 149(1-2):234-243.

[35] Zhong, B.J., Zhang, H.S., Fu, W.B., 2003. Catalytic effect of KOH on the reaction NO with char. Combustion and Flame, 132(3):364-373.

[36] Zhou, H., Qiu, K.Z., Wang, Z.H., Cen, K.F., 2004. Study of coal rank and fineness on NOx reduction with coal reburning technology. Journal of Fuel Chemistry and Technology, 32(2):147-150 (in Chinese).

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