Infrared Absorption Measurements of the Velocity of a Premixed Hydrogen/Air Flame Propagating in an Obstacle-Laden Tube
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[1] F. Halter,et al. Experimental study on turbulent expanding flames of lean hydrogen/air mixtures , 2017 .
[2] P. Vidal,et al. Experimental investigation of detonation quenching in non-uniform compositions , 2016 .
[3] T. Sattelmayer,et al. High-speed OH-PLIF imaging of deflagration-to-detonation transition in H2–air mixtures , 2016 .
[4] E. Studer,et al. Combustion modeling in large scale volumes using EUROPLEXUS code , 2015 .
[5] Robert C. Youngquist,et al. Intensity calibrated hydrogen flame spectrum , 2014 .
[6] Joseph E. Shepherd,et al. Absorption cross section at 3.39 μm of alkanes, aromatics and substituted hydrocarbons , 2012 .
[7] Sergey B. Dorofeev,et al. Flame acceleration and explosion safety applications , 2011 .
[8] G. Ciccarelli,et al. The role of shock―flame interactions on flame acceleration in an obstacle laden channel , 2010 .
[9] C. Law,et al. Influence of gas compression on flame acceleration in channels with obstacles , 2010 .
[10] A. Beccantini,et al. The reactive Riemann problem for thermally perfect gases at all combustion regimes , 2010 .
[11] C. Law,et al. Flame acceleration in channels with obstacles in the deflagration-to-detonation transition , 2010, 1211.0655.
[12] L. Eriksson,et al. Different stages of flame acceleration from slow burning to Chapman-Jouguet deflagration. , 2009, Physical review. E, Statistical, nonlinear, and soft matter physics.
[13] Craig T. Johansen,et al. Visualization of the unburned gas flow field ahead of an accelerating flame in an obstructed square channel , 2009 .
[14] Christophe Eric Corre,et al. Numerical simulations of a transient injection flow at low Mach number regime , 2008 .
[15] Ronald K. Hanson,et al. Temperature- and pressure-dependent absorption cross sections of gaseous hydrocarbons at 3.39 µm , 2006 .
[16] L. Eriksson,et al. Accelerating flames in cylindrical tubes with nonslip at the walls , 2006 .
[17] Gang Li,et al. The HITRAN 2008 molecular spectroscopic database , 2005 .
[18] G. Ciccarelli,et al. Effect of obstacle size and spacing on the initial stage of flame acceleration in a rough tube , 2005 .
[19] Robert W. Dibble,et al. In situ measurement of hydrocarbon fuel concentration near a spark plug in an engine cylinder using the 3.392 μm infrared laser absorption method: Discussion of applicability with a homogeneous methane-air mixture , 2003 .
[20] T. H. Kim,et al. DDT in methane-air mixtures , 2002 .
[21] Wolfgang Breitung,et al. Evaluation of limits for effective flame acceleration in hydrogen mixtures , 2001 .
[22] S. Dorofeev,et al. Effect of obstacle geometry on behaviour of turbulent flames , 1999 .
[23] S. Yoshiyama. Measurement of hydrocarbon fuel concentration by means of infrared absorption technique with 3.39 ?m HeNe laser , 1996 .
[24] R. Knystautas,et al. Doppler interferometry study of unstable detonations , 1995 .
[25] J. Hartmann,et al. High temperature absorption of the 3.39 μm He-Ne Laser line by Methane , 1989 .
[26] D. E. Burch,et al. Absorption of 3.39-Micron Helium–Neon Laser Emission by Methane in the Atmosphere , 1965 .