Открытый доступ Открытый доступ  Ограниченный доступ Доступ для подписчиков

Экспериментальная проверка эффективности ввода мочевины в высокотемпературную восстановительную зону для подавления оксидов азота на пылеугольном котле

В. А. Баторшин

Аннотация


--

Полный текст:

PDF

Литература


Houshfar E. NOx emission reduction by staged combustion in grate combustion of biomass fuels and fuel mixtures / E. Houshfar, Ø. Skreiberg, D. Todorović, A. Skreiberg, T. Løvås, A. Jovović, L. Sørum // Fuel. 2012. Vol. 98. P. 29−40.

Zhang J. Improvement of NOx formation model for pulverized coal combustion by increasing oxidation rate of HCN / J. Zhang, T. Ito, T. Okada, E. Oono, T. Suda // Fuel. 2013. Vol. 113. P. 697−706.

Becidan M. NOx and N2O precursors (NH3 and HCN) in pyrolysis of biomass residues / M. Becidan, Ø. Skreiberg, J. E. Hustad // Energy Fuels. 2007. Vol. 21. P. 1173−1180.

De Soete G. G. Overall reaction rates of NO and N2 formation from fuel nitrogen // Symp. (Int.) Combust. 1975. Vol. 15, P. 1093−1102.

Taniguchi M. A role of hydrocarbon reaction for NOx formation and reduction in fuel-rich pulverized coal combustion / M. Taniguchi, Y. Kamikawa, T. Okazaki, K. Yamamoto, H. Orita // Combust. Flame. 2010. Vol. 157. P. 1456−1466.

Fenimore C. P. Formation of nitric oxide from fuel nitrogen in ethylene flames // Combust. Flame. 1972. Vol. 19. P. 289−296.

Lin J.-Y. HCN and NH3 formation during coal/char gasification in the presence of NO / J.-Y. Lin, S. Zhang, L. Zhang, Z. Min, H. Tay, C.-Z. Li // Environ. Sci. Technol. 2010. Vol. 44. P. 3719−3723.

Bose A. C. Coal composition effects on mechanisms governing the destruction of nitric oxide and other nitrogenous species during fuel-rich combustion / A. C. Bose, K. M. Dannecker, J. O. L. Wendt // Energy Fuels. 1988. Vol. 2. P. 301−308.

Li C.-Z. Formation of NOx and SOx precursors during the pyrolysis of coal and biomass. Part III. Further discussion on the formation of HCN and NH3 during pyrolysis / C.-Z. Li, L. L. Tan // Fuel. 2000. Vol. 79. P. 1899−1906.

Hasegawa T. Study of ammonia removal from coal-gasified fuel / T. Hasegawa, M. Sato // Combust. Flame. 1998. Vol. 114. P. 246−258.

Tayyeb Javed M. Control of combustion-generated nitrogen oxides by selective non-catalytic reduction / M. Tayyeb Javed, N. Irfan, B. M. Gibbs // J. Environ. Manage. 2007. Vol. 83. P. 251−289.

Spliethoff H. Basic effects on NOx emissions in air staging and reburning at a bench-scale test facility / H. Spliethoff, U. Greul, H. Rüdiger, K. R. G. Hein // Fuel. 1996. Vol. 75. P. 560−564.

Yue P. NOx reduction by urea solution in fuel-rich pulverized coal combustion / P. Yue, Z. Zhang, J. Zhang, D. Bi // Energy Sources, Part A. 2017. Vol. 39. P. 2090−2097.

Bi D. G. Effect of stoichiometry and temperature on NOx reduction by reagent injection in the fuel-rich zone of pulverized coal combustion / D. G. Bi, Z. X. Zhang, J. C. Dong, Z. X. Zhu, J. Yu // Energy Fuels. 2019. Vol. 33. P. 1501−1508.

Lu X. Mechanism and simulation study of ammonia-injected denitrification at high-temperature reduction zone / X. Lu, Q. L. Wu, X. Y. Zhang // Therm. Power Gener. 2019. Vol. 48, P. 64−68.

Bockelie M. NOx Control options and integration for US coal fired boilers. Final report / M. Bockelie, K. Davis, T. Linjewile, C. Senior, E. Eddings, K. Whitty, L. Baxter, C. Bartholomew, W. Hecker, S. Harding, R. Hurt // Reaction Engineering International. 2006.

Cremer M. Design and demonstration of rich reagent injection (RRI) for NOx reduction at Conectiv’s B.L. England station. Proceedings of the EPRIDOE-EPA combined power plant air pollutant control symposium / M. Cremer, B. Adams, D. O’Connor, V. Bhamidipati // MEGA Symposium. 2001.

Cremer M., Adams B. Cyclone boiler field testing of advanced layered NOx control technology in Sioux Unit 1 // Reaction Engineering International. 2006.

Cremer M. Improved rich reagent injection (RRI) performance for NOx control in coalfired utility boilers / M. Cremer, D. H. Wang, D. Boll, E. Schindler, E. Vasquez // U.S. DOE Conference on SCR and SNCR for NOx Control. ResearchGate. 2003.

Bi D. Industrial trials of high-temperature selective noncatalytic reduction injected in the primary combustion zone in a 50 MWe tangentially firing pulverized-coal boiler for deeper NOx reduction / D. Bi, J. Zhang, Z. Zhang, Y. Rong, P. Yue, Z. Fu, X. Ji // Energy Fuels. 2016. Vol. 30. P. 10858−10867.

Bai H. Industrial experiment on NOx reduction by urea solution injection in the fuel-rich zone of a 330 MW tangentially pulverized coal-fired boiler / H. Bai, Z. Zhang, Z. Li, X. Wu, X. Guo, J. Zhang, D. Bi // ACS Omega. 2022. Vol. 7, Iss. 14. P. 11853-11861.

Alzueta M. U. Impact of new findings concerning urea thermal decomposition on the modeling of the urea-SNCR process / M. U. Alzueta, R. Bilbao, A. Millera, M. Oliva, J. C. Ibañez // Energy Fuels. 2000. Vol. 14. P. 509−510.

Skreiberg Ø., Kilpinen P., Glarborg P. Ammonia chemistry below 1400 K under fuel-rich conditions in a flow reactor // Combust. Flame. 2004. Vol. 136. P. 501−518.

Li S., Wei X., Guo X. Effect of H2O vapor on NO reduction by CO: experimental and kinetic modeling study // Energy Fuels. 2012. Vol. 26. P. 4277−4283.

Bi D. Experimental study on influencing factors of NOx reduction by combining air staging and reagent injection / D. Bi, Z. Zhang, Z. Zhu, X. Guo, H. Bai // Energy Sources, Part A. 2019. Vol. 10, Iss. 1. P. 2616−2624.


Ссылки

  • На текущий момент ссылки отсутствуют.


© 1998 — 2024 НТФ «Энергопрогресс»


Адрес редакции:
129090, г. Москва, ул. Щепкина, д. 8
Телефон: +7 495 234-74-21
E-mail: energetik@energy-journals.ru