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Articles

Chemiluminescence of Burner-Stabilized Premixed Laminar Flames

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Pages 18-42 | Received 10 Nov 2017, Accepted 16 Jan 2018, Published online: 17 Jan 2019

References

  • Alviso, D., Rolon, J., Scouflaire, P., and Darabiha, N. 2015. Experimental and numerical studies of biodiesel combustion mechanisms using a laminar counterflow spray premixed flame. Fuel, 153, 154–165.
  • Arias, L., Torres, S., Sbarbaro, D., and Farias, O. 2008. Photodiode-based sensor for flame sensing and combustion-process monitoring. Appl Opt., 47(29), 5541–5549. doi:10.1364/AO.47.005541
  • Ballester, J., Hernández, R., Sanz, A., Smolarz, A., Barroso, J., and Pina, A. 2009. Chemi- luminescence monitoring in premixed flames of natural gas and its blends with hydrogen. P. Combust. Inst., 32(2), 2983–2991. doi:10.1016/j.proci.2008.07.029
  • Barra, A.J., and Ellzey, J.L. 2004. Heat recirculation and heat transfer in porous burners. Combust. Flame, 137(1–2), 230–241. doi:10.1016/j.combustflame.2004.02.007
  • Borghi, R., and Champion, M. 2000. Modélisation et théorie des flammes, Editions Technip, Paris, ISBN : 2-7108-0758-0 .
  • Botha, J.P., and Spalding, D.B. 1954. The laminar flame speed of propane/air mixtures with heat extraction from the flame. Pro. Roy. Soc. London A, 225(1160), 71–96. doi:10.1098/rspa.1954.0188
  • Candel, S., Schmitt, T., and Darabiha, N. 2011. Progress in transcritical combustion: experimentation,modeling and simulation. In Proceedings of 23rd ICDERS, Irvine USA, pp. 27.
  • de Goey, L., van Oijen, J., Kornilov, V., and Ten Thije Boonkkamp, J. 2011. Propagation, dynamics and control of laminar premixed flames. P. Combust. Inst., 33(1), 863–886. doi:10.1016/j.proci.2010.09.006
  • Ding, Y., Durox, D., Darabiha, N., and Schuller, T. 2017. Effect of fuel composition on the flame chemiluminescence. In Proceedings of the European Combustion Meeting 2017, Dubrovnik, Croatia, April 18–21.
  • Docquier, N., Lacas, F., and Candel, S. 2002. Closed-loop equivalence ratio control of premixed combustors using spectrally resolved chemiluminescence measurements. P. Combust. Inst., 29(1), 139–145. doi:10.1016/S1540-7489(02)80022-0
  • Durox, D., Baillot, F., Searby, G., and Boyer, L. 1997. On the shape of flames under strong acoustic forcing: a mean flow controlled by an oscillating flow. J Fluid Mech, 350, 295–310. doi:10.1017/S0022112097006940
  • García-Armingol, T., and Ballester, J. 2014a. Flame chemiluminescence in premixed combustion of hydrogen-enriched fuels. Int J Hydrogen Energy, 39(21), 11299–11307. doi:10.1016/j.ijhydene.2014.05.109
  • García-Armingol, T., and Ballester, J. 2014b. Influence of fuel composition on chemiluminescence emission in premixed flames of CH4/CO2/H2/CO blends. Int J Hydrogen Energy, 39(35), 20255–20265. doi:10.1016/j.ijhydene.2014.10.039
  • Gaydon, A. 1974. The Spectroscopy of Flames, Second Edition, Springer.
  • Geddis, P.J. (2009). Evaluation of chemiluminescence as a measurement option for industrial flame monitoring and process control. PhD thesis, University of Toronto.
  • Guethe, F., Guyot, D., Singla, G., Noiray, N., and Schuermans, B. 2012. Chemiluminescence as diagnostic tool in the development of gas turbines. Appl. Phys. B, 107(3), 619–636. doi:10.1007/s00340-012-4984-y
  • Guiberti, T., Durox, D., and Schuller, T. 2017. Flame chemiluminescence from CO2- and N2-diluted laminar CH4/air premixed flames. Combust. Flame, 181, 110–122. doi:10.1016/j.combustflame.2017.01.032
  • Guyot, D., Guethe, F., Schuermans, B., Lacarelle, A., and Paschereit, C.O. 2010. CH*/OH* chemiluminescence response of an atmospheric premixed fl under varying operating conditions. GT2010-23135. In ASME Turbo Expo 2010, Glasgow, UK, June 10–18.
  • Hardalupas, Y., and Orain, M. 2004. Local measurements of the time-dependent heat release rate and equivalence ratio using chemiluminescent emission from a flame. Combust. Flame, 139(3), 188–207. doi:10.1016/j.combustflame.2004.08.003
  • Hardalupas, Y., Orain, M., Panoutsos, C.S., Taylor, A., Olofsson, J., Seyfried, H., Richter, M., Hult, J., Aldén, M., Hermann, F., and Klingmann, J. 2004. Chemiluminescence sensor for local equivalence ratio of reacting mixtures of fuel and air (FLAMESEEK). Appl. Therm. Eng., 24(11–12), 1619–1632. Industrial Gas Turbine Technologies doi:10.1016/j.applthermaleng.2003.10.028
  • Hardalupas, Y., Panoutsos, C., and Taylor, A. 2010. Spatial resolution of a chemiluminescence sensor for local heat-release rate and equivalence ratio measurements in a model gas turbine combustor. Exp. Fluids, 49(4), 883–909. doi:10.1007/s00348-010-0915-z
  • Higgins, B., McQuay, M., Lacas, F., and Candel, S. 2001a. An experimental study on the effect of pressure and strain rate on CH chemiluminescence of premixed fuel-lean methane/air flames. Fuel, 80(11), 1583–1591. doi:10.1016/S0016-2361(01)00040-0
  • Higgins, B., McQuay, M., Lacas, F., Rolon, J.-C., Darabiha, N., and Candel, S. 2001b. Systematic measurements of OH chemiluminescence for fuel-lean, high-pressure, premixed, laminar flames. Fuel, 80(1), 67–74. doi:10.1016/S0016-2361(00)00069-7
  • Hurle, I.R., Price, R.B., Sugden, T.M., and Thomas, A. 1968. Sound emission from open turbulent premixed flames. Pro. Roy. Soc. London A, 303(1475), 409–427. doi:10.1098/rspa.1968.0058
  • Johnson, M., Kostiuk, L., and Cheng, R. 1998. A ring stabilizer for lean premixed turbulent flames. Combust. Flame, 114(3–4), 594–596. doi:10.1016/S0010-2180(97)00353-2
  • Kedia, K.S., and Ghoniem, A.F. 2012. Mechanisms of stabilization and blowoff of a premixed flame downstream of a heat-conducting perforated plate. Combust. Flame, 159(3), 1055–1069. doi:10.1016/j.combustflame.2011.10.014
  • Kojima, J., Ikeda, Y., and Nakajima, T. 2000. Spatially resolved measurement of OH*, CH*, and C2* chemiluminescence in the reaction zone of laminar methane/air premixed flames. P. Combust. Inst., 28(2), 1757–1764. doi:10.1016/S0082-0784(00)80577-9
  • Kojima, J., Ikeda, Y., and Nakajima, T. 2005. Basic aspects of OH(A), CH(A), and C2(d) chemiluminescence in the reaction zone of laminar methane-air premixed flames. Combust. Flame, 140(1–2), 34–45. doi:10.1016/j.combustflame.2004.10.002
  • Konnov, A.A. (2015). The temperature and pressure dependences of the laminar burning velocity: experiments and modeling. In Proc. 7th European Combustion Meeting, Budapest, Hungary, March-April 30–2.
  • Lauer, M., and Sattelmayer, T. 2010. On the adequacy of chemiluminescence as a measure for heat release in turbulent flames with mixture gradients. J. Eng. Gas Turb. Power, 132(6), 061502. doi:10.1115/1.4000126
  • Lauer, M., Zellhuber, M., Sattelmayer, T., and Aul, C.J. 2011. Determination of the heat release distribution in turbulent flames by a model based correction of OH* chemiluminescence. J. Eng. Gas Turb. Power, 133(12), 121501. doi:10.1115/1.4004124
  • Law, C. 1989. Dynamics of stretched flames. Symp. (Int.) Combust., 22(1), 1381–1402. doi:10.1016/S0082-0784(89)80149-3
  • Law, C., and Sung, C. 2000. Structure, aerodynamics, and geometry of premixed flameslets. Prog. Energy Combust. Sci., 26(4–6), 459–505. doi:10.1016/S0360-1285(00)00018-6
  • Lewis, B., and Von Elbe, G. 1987. Combustion, Flames and Explosions of Gases, Academic Press, New York,  ISBN :978-0-12-446751-4.
  • Mazas, A., Fiorina, B., Lacoste, D., and Schuller, T. 2011. Effects of water vapor addition on the laminar burning velocity of oxygen-enriched methane flames. Combust. Flame, 158(12), 2428–2440. doi:10.1016/j.combustflame.2011.05.014
  • Mejia, D., Selle, L., Bazile, R., and Poinsot, T. 2015. Wall-temperature effects on flame response to acoustic oscillations. P. Combust. Inst., 35(3), 3201–3208. doi:10.1016/j.proci.2014.07.015
  • Nori, V., and Seitzman, J. (2007). Chemiluminescence measurements and modeling in syngas, methane and jet-a fueled combustors. In 45th AIAA Aerospace Sciences Meeting and Exhibit, Reno, NV, January 8–11.
  • Nori, V.N., and Seitzman, J.M. 2009. CH* chemiluminescence modeling for combustion diagnostics. P. Combust. Inst., 32(1), 895–903. doi:10.1016/j.proci.2008.05.050
  • Orain, M., and Hardalupas, Y. 2010. Effect of fuel type on equivalence ratio measurements using chemiluminescence in premixed flames. C. R. Mecanique, 338(5), 241–254. doi:10.1016/j.crme.2010.05.002
  • Panoutsos, C., Hardalupas, Y., and Taylor, A. 2009. Numerical evaluation of equivalence ratio measurement using OH* and CH* chemiluminescence in premixed and non-premixed methane-air flames. Combust. Flame, 156(2), 273–291. doi:10.1016/j.combustflame.2008.11.008
  • Samaniego, J.-M., Egolfopoulos, F., and Bowman, C. 1995. CO2* chemiluminescence in premixed flames. Combust. Sci. Technol., 109(1–6), 183–203. doi:10.1080/00102209508951901
  • Smith, G.P., Golden, D.M., Frenklach, M., Eiteener, B., Goldenberg, M., Bowman, C.T., Hanson, R.K., Gardiner, W.C., Lissianski, V.V., and Qin, Z.W. 2000. GRI-Mech 3.0. http://www.me.berkeley.edu/gri_mech/.
  • Smith, G.P., Luque, J., Park, C., Jeffries, J.B., and Crosley, D.R. 2002. Low pressure flame determinations of rate constants for OH(A) and CH(A) chemiluminescence. Combust. Flame, 131(1–2), 59–69. doi:10.1016/S0010-2180(02)00399-1
  • Smooke, M.D. 1982. Solution of burner-stabilized premixed laminar flames by boundary value methods. J. Comput. Phys., 48(1), 72–105. doi:10.1016/0021-9991(82)90036-5
  • Van Maaren, A., Thung, D., and De Goey, L.R.H. 1994. Measurement of fl temperature and adiabatic burning velocity of methane/air mixtures. Combust. Sci. Technol., 96(4–6), 327–344. doi:10.1080/00102209408935360
  • Zimmer, L., Tachibana, S., Yamamoto, T., Kurosawa, Y., and Suzuki, K. (2003). Evaluation of chemiluminescence as sensor for lean premixed combustion. In 4th Symposium on Smart Control of Turbulence, Tokyo, Japan, March 2–4.

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