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The method of nitrogen oxide emission reduction during the combustion of gaseous fuel in municipal thermal power boilers

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The nitrogen oxides in a flame of burning fuel can be created by many mechanisms. The amount of NOx concentration emitted to the ground atmosphere mainly depends on the type of fuel burned in the industrial and heating boilers. Changes in the country’s thermal policy and requirements that are set for us by the European Union States are forcing us to reduce greenhouse gas emissions. Directed metered ballast method is one of the most attractive techniques for reducing NOx emissions. In recent years, moisture injection technology is still investigated on low and medium power thermal power boilers operating on gaseous fuel. The goal of this work was to perform the investigations of the process of a moisture injection into the zones of decisive influence (SDW-I and SDW-II) on steam and water boilers: DKVR 10-13, DKVR 20-13, DE 25-14 and PTVM-50. The obtained results clearly show how the proposed method affects NOx reduction and boiler efficiency.
Rocznik
Strony
114--123
Opis fizyczny
Bibliogr. 34 poz., rys., tab., wykr.
Twórcy
  • Koszalin University of Technology
Bibliografia
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  • [3] Herdzik J., Noch T., Ballast Water Management Systems on Vessels. The Water Cleanliness Requirements of New D-2 Standard Versus the Expectations, Rocznik Ochrona Środowiska, 20, 2018, pp. 647-661.
  • [4] Janta-Lipińska S., Shkarovskiy A., The study on decreasing of nitrogen oxides emission carried out on DKVR 10-13 industrial heating boilers, E3S Web of Conferences, 44, 2018.
  • [5] Jemieljanow A.A., Development of injection devices to suppress nitrogen oxides when burning gas and mazout in boiler hearths, Sankt Petersburg 1992.
  • [6] Kormilitsyn V.I., Ezhov V.S., Studying the Removal of Nitrogen Oxides from Boiler Flue Gases in Firing Natural Gas, Thermal Engineering, 60, 2, pp. 147-152.
  • [7] Konieczyński J., Komosiński B., Cieślik E., Konieczny T., Mathews B., Rachwał T., Rzońca G., Research into Properties of Dust from Domestic Central Heating Boiler Fired with Coal and Solid Biofuels, Archives of Environmental Protection, 43, 2, 2017, pp. 20-27.
  • [8] Krawczyk P., Experimental investigation of N2O formation in selective non-catalytic NOx reduction processes performed in stoker boiler, Polish Journal of Chemical Technology, 18, 4, 2016, pp. 104-109.
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  • [13] Pavlenko A., Szkarowski A., Janta-Lipińska S., Research on Burning of Water Black Oil Emulsions, Rocznik Ochrona Środowiska, 16, 2014, pp. 376-385.
  • [14] Shkarovskiy A.L., Novikov O.N., Novikova A.V., Polushhkin V.I., Development of a new family of intelligent control systems of combustion quality, Modern High Technologies, 12, 2016, pp. 556-561.
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  • [16] Szkarowski A., Principles of Calculation at Suppression of NOx Formation by a Method of the Dosed Directed Injection of a Water Ballast, Rocznik Ochrona Środowiska, 4, 2002, pp. 365-378.
  • [17] Szkarowski A., Detailed Problems of the Effective and Ecologically Clean Combustion of Fuel in the Pre-grates of the Furnaces, Rocznik Ochrona Środowiska, 5, 2003, pp. 67-78.
  • [18] Szkarowski A., Janta-Lipińska S., Automatic Control of Burning Quality of Solid Fuel in Industrial Heating Boilers, Rocznik Ochrona Środowiska, 11, 2009, pp. 241-255.
  • [19] Szkarowski A., Janta-Lipińska S., Modeling of Optimum Burning of Fuel in Industrial Heating Boilers, Rocznik Ochrona Środowiska, 13, 2011, pp. 511-524.
  • [20] Szkarowski A., Janta-Lipińska S., Examination of Boiler Operation Energy-ecological Indicators During Fuel Burning with Controlled Residual Chemical Underburn, Rocznik Ochrona Środowiska, 15, 2013, pp. 981-995.
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  • [23] Szkarowski A., Janta-Lipińska S., Gawin R., Reducing Emissions of Nitrogen Oxides from DKVR Boilers, Rocznik Ochrona Środowiska, 18, 2016, pp. 565-578.
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  • [26] Szyszlak-Bargłowicz J., Zając G., Słowik T., Research on Emissions from Combustion of Pellets in Agro Biomass Low Power Boiler, Rocznik Ochrona Środowiska, 19, 2017, pp. 715-730.
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  • [30] Xue S., Hui S.E., Liu T.S., Zhou Q.L., Xu T.M., Hu H.L., Experimental investigation on NOx emission and carbon burnout from a radially biased pulverized coal whirl burner, Fuel Processing Technology, 90, 9, 2009, pp. 1142-1147.
  • [31] Zając G., Szyszlak-Bargłowicz J., Słowik T., Wasilewski J., Kuranc A., Emission Characteristics of Biomass Combustion in a Domestic Heating Boiler Fed with Wood and Virginia Mallow Pellets, Fresenius Environmental Bulletin, 26, 7, 2017, pp. 4663-4670.
  • [32] Zandeckis A., Blumberga D., Rochas C., Veidenbergs I., Silins K., Methods of Nitrogen Oxide Reduction in Pellet Boilers, Scientific Journal of RTU, Environmental and Climate Technologies, 4, 2010, pp. 123-129.
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  • [34] Zhang X., Zhou J., Sun S., Sun R., Qin M., Numerical investigation of low NOx combustion strategies in tangentially-fired coal boilers, Fuel, 142, 2015, pp. 215-221.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2021).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-9aa795dc-5291-45c2-9a32-a3bdc90e91a6
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