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April 27, 2026The Proceedings of the Thermal Engineering Conference0 citationsOpen Access

Laser-induced phosphorescence applied in the flame wall impinging process

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KHKota HiranoJSJennifer SchurrNHNaoto HORIBE

Key Points

  • The aim was to study the dynamics of flame propagation and temperature changes during flame impingement using different fuel mixtures.
  • Conducted experiments with stoichiometric methane-air and lean hydrogen-air mixtures in a constant-volume bomb.
  • Utilized shadowgraph technique for flame visualization and laser-induced phosphorescence for measuring wall temperature distributions.
  • Maintained similar laminar burning velocities for comparison between methane and hydrogen flames.
  • Hydrogen flames propagated faster and reached the wall quicker than methane flames.
  • The wall temperature rise rate after flame impingement was higher for hydrogen flames despite lower adiabatic flame temperature.
  • The thinner temperature boundary layer and greater heat flux contributed to the observed temperature changes.

Abstract

This study investigated premixed flame propagation and the wall temperature change during flame impingement in a constant-volume bomb. The experiments compared stoichiometric methane-air and lean (equivalence ratio of 0.5) hydrogen-air mixtures, which were prepared to have similar laminar burning velocities. Flame propagation was visualized using the shadowgraph technique, while wall temperature distributions were measured using laser-induced phosphorescence (LIP) with YAG:Dy. Despite the similar laminar burning velocities, the results revealed that hydrogen flames propagated faster and reached the wall in less time than methane flames. Another finding was that the rate of wall temperature rise after flame impingement is greater for hydrogen flames than for methane flames. This is because, despite the lower adiabatic flame temperature, the temperature boundary layer is thinner and the heat flux is greater.

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Cite This Study

Hirano et al. (2025) studied this question.

synapsesocial.com/papers/69eefcaefede9185760d391fhttps://doi.org/10.1299/jsmeted.2025.h52
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