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Articles

Experimental Investigation of the Mechanisms of Cellular Instabilities Developing on Spherical Two-Phase Flames

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Pages 2026-2043 | Received 31 Oct 2015, Accepted 12 Apr 2016, Published online: 28 Oct 2016

References

  • Addabbo, R., Bechtold, J., and Matalon, M. 2002. Wrinkling of spherically expanding flames. Proc. Combust. Inst., 29, 1527.
  • Annamalai, K., and Ryan, W. 1992. Interactive processes in gasification and combustion. Part I: Liquid drop arrays and clouds. Prog. Energy Combust., 18, 221.
  • Bachalo, W., Rudoff, K., and Brena De La Rosa, A. 1988. Mass flux measurements of a high number density spray system using the phase Doppler particle analyzer. Presented at the 26th Aerospace Science Meeting, Reno, NV, January 11–14.
  • Ballal, D., and Lefebvre, A. 1981. Flame propagation in heterogeneous mixtures of fuel droplets, fuel vapor and air. Proc. Combust. Inst., 18, 321.
  • Bohren, C.F., and Huffman, D.R. 2008. Absorption and Scattering of Light by Small Particles, John Wiley & Sons, New York.
  • Bradley, D., Lawes, M., Liao, S., and Saat, A. 2014. Laminar mass burning and entrainment velocities and flame instabilities of i-octane, ethanol and hydrous ethanol/air aerosols. Combust. Flame, 161, 1620.
  • Crespo, A., and Linan, A. 1975. Unsteady effects in droplet evaporation and combustion. Combust. Sci. Technol., 11, 9.
  • Davis, S., Law, C., and Wang, H. 1999. Propene pyrolysis and oxidation kinetics in a flow reactor and laminar flames. Combust. Flame, 119, 375.
  • Egolfopoulos, F., and Law, C. 1990. Chain mechanisms in the overall reaction orders in laminar flame propagation. Combust. Flame, 80, 7.
  • Goswami, M., Derks, S.C., Coumans, K., Slikker, W.J., de Andrade Oliveira, M.H., Bastiaans, R.J., Luijten, C.M., de Goey, L.P.H., and Konnov, A.A. 2013. The effect of elevated pressures on the laminar burning velocity of methane + air mixtures. Combust. Flame, 160, 1627.
  • Greenberg, J.B. 2007. Finite-rate evaporation and droplet drag effects in spherical flame front propagation through a liquid fuel mist. Combust. Flame, 148, 187.
  • Greenberg, J.B., Mcintosh, A., and Brindley, J. 1999. Instability of a flame front propagating through a fuel-rich droplet-vapour-air cloud. Combust. Theor. Model., 3, 567.
  • Halter, F., Tahtouh, T., and Mounaïm-Rousselle, C. 2010. Measurement of laminar burning speeds and Markstein lengths using a novel methodology. Combust. Flame, 156, 1735.
  • Hayashi, S., Kumagai, S., and Sakai, T. 1977. Propagation velocity and structure of flames in droplet-vapor-air mixtures. Combust. Sci. Technol., 15, 169.
  • Huzayyin, A.S., Moneib, H.A., Shehatta, M.S., and Attia, A.M.A. 2008. Laminar burning velocity and explosion index of LPG–air and propane–air mixtures. Fuel, 87, 39.
  • Jomaas, G., Law, C.K., and Bechtold, J.K. 2007. On transition to cellularity in expanding spherical flames. J. Fluid Mech., 583, 1.
  • Kelley, A., and Law, C. 2009. Nonlinear effects in the extraction of laminar flame speeds from expanding spherical flames. Combust. Flame, 156, 1844.
  • Kitano, T., Nishio, J., Kurose, R., and Komori, S. 2014. Effects of ambient pressure, gas temperature and combustion reaction on droplet evaporation. Combust. Flame, 161, 551.
  • Lawes, M., Lee, Y., and Marquez, N. 2006. Comparison of iso-octane burning rates between single-phase and two-phase combustion for small droplets. Combust. Flame, 144, 513.
  • Lentati, A., and Chelliah, H. 1998. Physical, thermal, and chemical effects of fine-water droplets in extinguishing counterflow diffusion flames. Proc. Combust. Inst., 27, 2839.
  • Lin, T., and Sheu, Y. 1991. Theory of laminar flame propagation in near-stoichiometric dilute sprays. Combust. Flame, 84, 333.
  • 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, 2428.
  • Myers, G., and Lefebvre, A.H. 1986. Flame propagation in heterogeneous mixtures of fuel drops and air. Combust. Flame, 66, 193.
  • Nomura, H., Izawa, K., Ujiie, Y., Sato, J.I., Marutani, Y., Kono, M., and Kawasaki, H. 1998. An experimental study on flame propagation in lean fuel droplet-vapor-air mixtures by using microgravity conditions. Proc. Combust. Inst., 27, 2667.
  • Park, O., Veloo, P.S., Liu, N., and Egolfopoulos, F. N. 2011. Combustion characteristics of alternative gaseous fuels. Proc. Combust. Inst., 33, 887.
  • Poling, B.E., Prausnitz, J.M., and O’Connell, J.P. 2001. The Properties of Gases and Liquids, McGraw-Hill, New York.
  • Saito, N., and Liao, C. 2005. Suppression effect of water vapor on flammability limits of hydrocarbon fuels—A study on fire suppression by water mist. Presented at the 6th Asia-Oceania Symposium on Fire Science and Technology, Daegu, Korea, March 17–20.
  • Smith, G.P., Golden, D.M., Frenklach, M., Moriarty, N.W., Eiteneer, B., Goldenberg, M., Bowman, C.T., Hanson, R.K., Song, S., and Gardiner Jr., W.C. 1999. GRI-Mech 3.0. http://www.me.berkeley.edu/gri_mech/.
  • Thimothée, R., Chauveau, C., Halter, F., and Gökalp, I. 2015. Characterization of cellular instabilities of a flame propagating in an aerosol. Presented at the ASME Turbo Expo 2015: Turbine Technical Conference and Exposition, Montréal, Canada, June 15–19.
  • Tse, S.D., Zhu, D., and Law, C.K. 2004. Optically accessible high-pressure combustion apparatus. Rev. Sci. Instrum., 75, 233.
  • Ulzama, S., and Specht, E. 2007. An analytical study of droplet combustion under microgravity: Quasi-steady transient approach. Proc. Combust. Inst., 31, 2301.
  • Vancoillie, J., Christensen, M., Nilsson, E., Verhelst, S., and Konnov, A. 2013. The effects of dilution with nitrogen and steam on the laminar burning velocity of methanol at room and elevated temperatures. Fuel, 105, 732.
  • Wilson, J.G. 1951. The Principles of Cloud-Chamber Technique, Cambridge University Press, Cambridge, UK.

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