Effects of considering preferential diffusion and flame stretch in FGM method for numerical simulations of hydrogen/air flames
Author:
Affiliation:
1. Department of Mechanical Engineering and Science, Kyoto University
Publisher
Japan Society of Mechanical Engineers
Link
https://www.jstage.jst.go.jp/article/jtst/19/1/19_24-00087/_pdf
Reference33 articles.
1. Abtahizadeh, S. E., de Goey, L. P. H., and van Oijen, J. A., Development of a novel flamelet-based model to include preferential diffusion effects in autoignition of CH4/H2 flames, Combustion and Flame, Vol.162, No.11 (2015), pp.4358-4369.
2. Almutairi, F. S., Dinesh, K. K. J. R., and van Oijen, J. A., Modelling of hydrogen-blended dual-fuel combustion using flamelet-generated manifold and preferential diffusion effects, International Journal of Hydrogen Energy, Vol.48, No.4 (2023), pp.1602-1624.
3. Altantzis, C., Frouzakis, C. E., Tomboulides, A. G., and Boulouchos, K., Direct numerical simulation of circular expanding premixed flames in a lean quiescent hydrogen-air mixture: Phenomenology and detailed flame front analysis, Combustion and Flame, Vol.162, No.2 (2015), pp.331-344.
4. Aung, K. T., Hassan, M. I., and Faeth, G. M., Flame stretch interactions of laminar premixed hydrogen/air flames at normal temperature and pressure, Combustion and Flame, Vol.109, No.1-2 (1997), pp.1-24.
5. Bastiaans, R. J. M., Vreman, A. W., and Pitsch, H., DNS of lean hydrogen combustion with flamelet-generated manifolds, CTR Annual Research Briefs (2007), pp.195-206.
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1. FGM modeling considering preferential diffusion, flame stretch, and non-adiabatic effects for hydrogen-air premixed flame wall flashback;Combustion and Flame;2024-11
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