On the Catalytic Combustion Behaviors of CH4 in a MCFC Power Generation System
Commenced in January 2007
Frequency: Monthly
Edition: International
Paper Count: 32804
On the Catalytic Combustion Behaviors of CH4 in a MCFC Power Generation System

Authors: Man Young Kim

Abstract:

Catalytic combustion is generally accepted as an environmentally preferred alternative for the generation of heat and power from fossil fuels mainly due to its advantages related to the stable combustion under very lean conditions with low emissions of NOx, CO, and UHC at temperatures lower than those occurred in conventional flame combustion. Despite these advantages, the commercial application of catalytic combustion has been delayed because of complicated reaction processes and the difficulty in developing appropriate catalysts with the required stability and durability. To develop the catalytic combustors, detailed studies on the combustion characteristics of catalytic combustion should be conducted. To the end, in current research, quantitative studies on the combustion characteristics of the catalytic combustors, with a Pd-based catalyst for MCFC power generation systems, relying on numerical simulations have been conducted. In addition, data from experimental studies of variations in outlet temperatures and fuel conversion, taken after operating conditions have been used to validate the present numerical approach. After introducing the governing equations for mass, momentum, and energy equations as well as a description of catalytic combustion kinetics, the effects of the excess air ratio, space velocity, and inlet gas temperature on the catalytic combustion characteristics are extensively investigated. Quantitative comparisons are also conducted with previous experimental data. Finally, some concluding remarks are presented.

Keywords: Catalytic combustion, Methane, BOP, MCFC power generation system, Inlet temperature, Excess air ratio, Space velocity.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1091422

Procedia APA BibTeX Chicago EndNote Harvard JSON MLA RIS XML ISO 690 PDF Downloads 2127

References:


[1] A. L. Dicks, "Hydrogen Generation from Natural Gas for the Fuel Cell Systems of Tomorrow,”Journal of Power Sources vol. 61, 1996, pp. 113-124.
[2] M. Ditaranto, J. E. Hustad,T. Slungaard, and A. H. Briand, "Experiments in a Catalytic Reactor Burning the Anode Off-Gas of a Methanol Fuel Cell,”Energy & Fuels, vol. 21, 2007, pp. 1982-1988.
[3] D. Hong, A Study on the Flow and Combustion Characteristics of the Catalytic Combustor for the MCFC Power Generation System, Department of Aerospace Engineering, M.S. Thesis, Chonbuk National University, Joenbuk, Korea, 2008
[4] S. Cocchi, G. Nutini, M. J. Spencer, and S. G. Nickolas, "Catalytic Combustion System for a 10MW Class Power Generation Gas Turbine,” Catalysis Today, vol. 117, 2006, pp. 419-426.
[5] H. Sadamori, T. Tanioka, and T. Matsuhisa, "Development of a High-Temperature Combustion Catalyst System and Prototype Catalytic Combustor Turbine Test Results,” Catalysis Today, vol. 26, 1995, pp. 337-344.
[6] R. A. DallaBetta, "Catalytic Combustion Gas Turbine Systems: The Preferred Technology for Low Emissions Electric Power Production and Co-Generation,”Catalysis Today, vol. 35, 1997, pp. 129-135.
[7] S. Kajita, and R. A. DallaBetta, "Achieving Ultra Low Emissions in a Commercial 1.4MW Gas Turbine Utilizing Catalytic Combustion,” Catalysis Today, vol. 83, 2003, pp. 279-288.
[8] R. Carroni, V. Schmidt, and T. Griffin, "Catalytic Combustion for Power Generation,” Catalysis Today, vol. 75, 2002, pp. 287-295.
[9] C. H. Hwang, C. E. Lee, and K. O. Lee, "Numerical Investigation on Combustion Characteristics of Methane in a Hybrid Catalytic Combustor,” Fuel, vol. 83, 2004, pp. 987-996.
[10] S. Cimino, A. D. Benedetto, R. Pirone, and G. Russo, "CO, H2or C3H8Assisted Catalytic Combustion of Methane Over Supported LaMnO3Monoliths,” Catalysis Today, vol. 83, 2003, pp. 33-43.
[11] J. H. Lee, and D. Trimm, "Catalytic Combustion of Methane,”Fuel Processing Technology, vol. 42, 1995, pp. 339-359.
[12] M. Lyubovsky, L. L. Smith, M. Castaldi, H. Karim, B. Nentwick, S. Etemad, R. LaPierre, and W. C. Pfefferle, "Catalytic Combustion over Platinum Group Catalysts: Fuel-Lean Versus Fuel-Rich Operation,” Catalysis Today, vol. 83, 2003, pp. 71-84.
[13] R. A. DallaBetta, J. C. Schlatter, D. K. Yee, D. G. Loffler, and T. Shoji, "Catalytic Combustion Technology to Achieve Ultra Low NOx Emissions: Catalyst Design and Performance Characteristics,” Catalysis Today, vol. 26, 1995, pp. 329-335.
[14] W. J. Kuper, M. Blaauw, F. Berg, and G. H. Graaf, "Catalytic Combustion Concept for Gas Turbines,” Catalysis Today, vol. 47, 1999, pp. 347-359.
[15] T. Griffin, and W. Weisenstein, "Palladium-Catalyzed Combustion of Methane: Simulated Gas Turbine Combustion at Atmospheric Pressure,” Combustion and Flame, vol. 101, 1995, pp. 81-90.
[16] S. M. Lee, Y. D. Lee, K. Y. Ahn, D. J. Hong, and M. Y. Kim, "A Study on the Design of MCFC Off-Gas Catalytic Combustor,” Trans. of the Korean Hydrogen & New Energy Society, vol. 18, 2007, pp. 406-412.
[17] S. R. Deshmukh, and D. G. Vlachos, "A Reduced Mechanism for Methane and One-Step Rate Expressions for Fuel-Lean Catalytic Combustion of Small Alkanes on Noble Metals,” Combustion and Flame, vol. 149, 2007, pp. 366-383.
[18] R. M. Heck, S. Gulati, andR. J. Farrauto, "The Application of Monoliths for Gas Phase Catalytic Reactions,” Chemical Engineering Journal, vol. 82, 2001, pp. 149-156.
[19] S. Mazumder, and D. Sengupta, "Sub-Grid Scale Modeling of Heterogeneous Chemical Reactions and Transport on Full-Scale Catalytic Converters,” Combustion and Flame, vol. 131, 2002, pp. 85-97.
[20] S. Karagiannidis, J. Mantzaras, G. Jackson, and K. Boulouchos, "Hetero-/Homogeneous Combustion and Stability Maps in Methand-Fueled Catalytic Microreactors,” Proceedings of the Combustion Institute, vol. 31, 2007, pp. 3309-3317.
[21] S. Su, and J. Agnew, "Catalytic Combustion of Coal Mine Ventilation Air Methane,” Fuel, vol. 85, 2006, pp. 1201-1210.
[22] R. W. Sidwell, H. Zhu, R. J. Kee, and D. T. Wickham, "Catalytic Combustion of Premixed Methane-In-Air on a High-Temperature Hexaaluminate Stagnation Surface,” Combustion and Flame, vol. 134, 2003, pp. 55-66.
[23] A. James, J. Brindley, and A. C. McIntosh, "Multi-Channel Monolith Reactors as Dynamic Systems,” Combustion and Flame, vol. 134, 2003, pp. 193-205.
[24] BOOST v5.0, AVL, Graz, Austria, 2006.
[25] G. N. Pontikakis, G. C. Koltsakis, A. M. Stamatelos, R. Noirot, Y. Agliany, H. Colas, P. Versaevel, and C Bourgeois, "Experimental and Modeling Study on Zeolite Catalysts for Diesel Engines,” Topics in Catalysis, vol. 16/17, 2001, pp. 329-235.
[26] iSIGHT v 7.1, Engineous software, Morrisville, USA, 2003.
[27] J. M. Lee, Y. K. Hwang, A. S. Mamman, S. M. Lee, D. Hong, K. Y. Ahn, and J. S. Chang, "Catalytic Combustion of Effluents from Methane-Based MCFC Device over Cordierite Supported Pd/La-Al2O3Catalyst,” Solid State Phenomena, vol. 135, 2008, pp. 1-6.
[28] Y. S. Seo, K. S. Song, and S. K. Kang, "Studies of Surface and Gas Reactions in a Catalytically Stabilized Combustor,” Korean Journal of Chemical Engineering, vol. 20, 2003, pp. 819-828.
[29] D. G. Norton, and D. G. Vlachos, "Hydrogen Assisted Self-Ignition of Propane/Air Mixtures in Catalytic Microburners,” Proceedings of the Combustion Institute, vol. 30, 2005, pp. 2473-2480.