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This paper presents the study of oxygen–enriched combustion of natural gas and its impact on nitrogen oxides emission. The research were performed on two experimental stands, i.e. combustion chambers with an industrial swirl burner of maximum power equal to 90 kW and 10 kW. The investigation includes the influenced of oxygen enhanced within the range between 21% and 30%. Furthermore, the role of temperature during the oxygen enrichment was analysed. The results of the research showed that with the rise in oxygen concentration in the air the concentration of nitrogen oxides also increases what is directly related to the rise in flame temperature as well as the addition of oxygen.
Słowa kluczowe
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Czasopismo
Rocznik
Tom
Strony
1925--1930
Opis fizyczny
Bibliogr. 18 poz., sche., tab., wykr.
Twórcy
autor
- Czestochowa University of Technology, Faculty of Production Engineering and Materials Technology, Department of Industrial Furnaces and Environmental Protection, Al. A. Krajowej 19, 42-201 Czestochowa, Poland
autor
- Czestochowa University of Technology, Faculty of Production Engineering and Materials Technology, Department of Industrial Furnaces and Environmental Protection, Al. A. Krajowej 19, 42-201 Czestochowa, Poland
autor
- Czestochowa University of Technology, Faculty of Mechanical Engineering and Computer Science, Institute of Thermal Machinery, Al. A. Krajowej 21, 42-201 Czestochowa, Poland
autor
- Czestochowa University of Technology, Faculty of Production Engineering and Materials Technology, Department of Industrial Furnaces and Environmental Protection, Al. A. Krajowej 19, 42-201 Czestochowa, Poland
autor
- Czestochowa University of Technology, Faculty of Production Engineering and Materials Technology, Department of Industrial Furnaces and Environmental Protection, Al. A. Krajowej 19, 42-201 Czestochowa, Poland
Bibliografia
- [1] R. C. Flagan, J. H. Seinfeld, Fundamentals of air pollution engineering; Prentice-Hall: New Jersey, 2005.
- [2] D. Vallero, Fundamentals of air pollution. 4th edition. Library of Congress Cataloging-in-Publication Data. Academy Press, 2008.
- [3] C. Baukal, Oxygen enhanced combustion. Air Products and Chemicals Inc; CRC Press. Allentown: Pensylwania, 1998.
- [4] O. Marin, F. Châtel-Pélage, G.M. Usman, N.bPerrin, Low-oxygen enrichment in coal-fired utility boilers. Int. Tech. Conf. Coal Util. Fuel Syst., 27th, Clearwater, 2003.
- [5] M. Wilk A. Magdziarz, in: H. A. Al-Megren (Ed.), Advances in Natural Gas Technology; InTech: Rijeka, 04, 479-496 (2012).
- [6] K. K. Wu, Y. C. Chang, C. H. Chen, Y. D. Chen, Fuel 89 (9), 2455-2462 (2010).
- [7] D. Poirier, E. W. Grandmaison, D. Lawrence, M. D. Matovic, E. Boyd, IFRF Combust. J. 04 (10), 1-15. (2004).
- [8] A. Magdziarz, M. Wilk, Rynek Energii 6, 47-51 (2011).
- [9] M. Wilk, A. Magdziarz, M. Kuźnia, Rynek Energii 5, 32-36 (2010).
- [10] D. Asendrych, P. Niegodajew, S. Drobniak, Chem. Process Eng. 34, 269-282 (2013).
- [11] H. Stadler, D. Christ, M. Habermehl, P. Heil, A. Kellermann, A. Ohliger, D. Toporov, R. Kneer, Fuel 90 (4), 1604-1611 (2011).
- [12] F. Normann, K. Andersson, B. Leckner, F. Johnsson, Prog. Energy Combust. Sci. 35 (5), 385-397 (2009).
- [13] G. Scheffknecht, L. Al-Makhadmeh, U. Schnell, J. Maier, Int. J. Greenh. Gas Control. 5, 16-35 (2011).
- [14] M. B. Toftegaard, J. Brix, P. A. Jensen, P. Glarborg, A. D. Jensen, Prog. Energy Combust. Sci. 36 (5), 581-625 (2010).
- [15] R. J. Hendershot, T. D. Lebrecht, N. C. Easterbrook, Chem. Eng. Prog. 106 (7), 57-61 (2010).
- [16] W. Kordylewski, Combustion and fuels. 5th ed., Wroclaw University of Technology Publishing House: Wrocław, 2008 (in polish).
- [17] J. Lasek, Energetics 07, 426-433 (2011) (in polish).
- [18] T. Czakiert, W. Nowak, Z. Bis, Energetics 10, 713-718 (2008) (in polish).
Uwagi
EN
Project DoktoRIS is acknowledged for providing the scientific scholarship to Ms Anna Poskart.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-668f6e67-2e4a-4198-8e0d-e7b217d6e31a