참고문헌
-
Ahn, K. Y., Kim, H. S., Son, M. K., Kim, H. K., and Kim, Y. M., 2002, 'An Experimental Study on the Combustion Characteristics of a Low
$NO_x$ Burner Using Reburning Technology,' KSME Internatioal Journal, Vol. 16, No. 7, pp. 950-958 -
Arai, M., 2000, 'Flue Gas Recirculation for Low
$NO_X$ Combustion System,' IJPGC2000-15073, pp. 1-10 - Baltasar, J., Garvalho, M. G., Coelho, P., and Costa, M., 1997, 'Flue Gas Recirculation in a Gas-fired Laboratory Furnace : Measurements and Modeling,' Fuel, Vol. 76, No. 10, pp. 919-929 https://doi.org/10.1016/S0016-2361(97)00093-8
-
Beer, J. M., 1996, 'Low
$NO_X$ Burners for Boilers, Furnaces, and Gas Turbines ; Drive Towards the Low Bonds of$NO_X$ Emissions,' Combust Sci. and Tech., Vol. 121, pp. 169-191 https://doi.org/10.1080/00102209608935593 -
Cho, E. -S., Sung, Y., and Chung, S. H., 2003, 'An Experiment on Low
$NO_X$ Combustion Characteristics in a Multi-Staged Burner,' Transaction of KSME (B), Vol. 27, No. 1, pp. 32-38 https://doi.org/10.3795/KSME-B.2003.27.1.032 - Feese, J. J. and Turns, S. R., 1998, 'Nitric Oxide Emissions from Laminar Diffusion Flames:Effects of Air-Side versus Fuel-Side Diluent Addition,' Comb. and Flame, Vol. 113, pp.66-78 https://doi.org/10.1016/S0010-2180(97)00217-4
-
Lang, J., 1994, 'Low
$NO_X$ Burner Design Achieves Near SCR Levels,' ASME, PWR-Vol. 24, pp. 127-131 - Milani, A. and Saponaro, A, 2001, 'Diluted Combustion Technologies,' IFRF Combustion Journal. Article No. 200101
- Wlinning, J. A. and WUnning, J. G., 1997, 'Flameless Oxidation to Reduce Thermal NO-Formation,' Prog. Energy Combust. Sci., Vol. 23, pp. 81-94 https://doi.org/10.1016/S0360-1285(97)00006-3