A detailed chemical kinetic model is used to explore the flammability and detonability of hydrogen mixtures. In the case of flammability, a detailed chemical kinetic mechanism for hydrogen is coupled to the CHEMKIN Premix code to compute premixed, laminar flame speeds. The detailed chemical kinetic model reproduces flame speeds in the literature over a range of equivalence ratios, pressures and reactant temperatures. A series of calculation were performed to assess the key parameters determining the flammability of hydrogen mixtures. Increased reactant temperature was found to greatly increase the flame speed and the flammability of the mixture. The effect of added diluents was assessed. Addition of water and carbon dioxide were found to re...
An analysis of the performance of an updated hydrogen combustion mechanism is presented. Particular ...
An analysis of the performance of an updated hydrogen combustion mechanism is presented. Particular ...
Recent suggestion by Burke and Klippenstein (2017) that chemically termolecular reactions H + O2 + R...
2013-10-01Developing reliable chemical kinetic models is a key ingredient in current and future effo...
Reduced chemical-kinetic mechanisms are investigated for hydrogen and syngas combustion to fill the ...
Reduced chemical-kinetic mechanisms are investigated for hydrogen and syngas combustion to fill the ...
A comprehensively tested H2/O2 chemical kinetic mechanism based on Mueller et al. [1] and recently p...
The calculations of laminar burning velocity are mostly based on empirical correlations obtained fro...
The released hydrogen can be ignited even with weak ignition sources. This emphasizes the importance...
This paper investigates the inner structure of the thin reactive layer of hydrogen–air fuellean defl...
As today’s world is demanding a greener environment where greenhouse gas emission and global warming...
Proceedings of: 13th International Conference on Numerical Combustion, 27-29 April, 2011, Corfu (Gr...
AbstractThe calculations of laminar burning velocity are mostly based on empirical correlations obta...
Proceedings of: 13th International Conference on Numerical Combustion, 27-29 April, 2011, Corfu (Gr...
An analysis of the performance of an updated hydrogen combustion mechanism is presented. Particular ...
An analysis of the performance of an updated hydrogen combustion mechanism is presented. Particular ...
An analysis of the performance of an updated hydrogen combustion mechanism is presented. Particular ...
Recent suggestion by Burke and Klippenstein (2017) that chemically termolecular reactions H + O2 + R...
2013-10-01Developing reliable chemical kinetic models is a key ingredient in current and future effo...
Reduced chemical-kinetic mechanisms are investigated for hydrogen and syngas combustion to fill the ...
Reduced chemical-kinetic mechanisms are investigated for hydrogen and syngas combustion to fill the ...
A comprehensively tested H2/O2 chemical kinetic mechanism based on Mueller et al. [1] and recently p...
The calculations of laminar burning velocity are mostly based on empirical correlations obtained fro...
The released hydrogen can be ignited even with weak ignition sources. This emphasizes the importance...
This paper investigates the inner structure of the thin reactive layer of hydrogen–air fuellean defl...
As today’s world is demanding a greener environment where greenhouse gas emission and global warming...
Proceedings of: 13th International Conference on Numerical Combustion, 27-29 April, 2011, Corfu (Gr...
AbstractThe calculations of laminar burning velocity are mostly based on empirical correlations obta...
Proceedings of: 13th International Conference on Numerical Combustion, 27-29 April, 2011, Corfu (Gr...
An analysis of the performance of an updated hydrogen combustion mechanism is presented. Particular ...
An analysis of the performance of an updated hydrogen combustion mechanism is presented. Particular ...
An analysis of the performance of an updated hydrogen combustion mechanism is presented. Particular ...
Recent suggestion by Burke and Klippenstein (2017) that chemically termolecular reactions H + O2 + R...