Effect of channel geometry and porous coverage on flame acceleration in hydrogen–air mixture

2021 ◽  
Vol 151 ◽  
pp. 128-140
Author(s):  
G.Y. Bivol ◽  
S.V. Golovastov ◽  
V.V. Golub
2020 ◽  
pp. 146808742097290
Author(s):  
CP Ranasinghe ◽  
W Malalasekera

A flame front is quenched when approaching a cold wall due to excessive heat loss. Accurate computation of combustion rate in such situations requires accounting for near wall flame quenching. Combustion models, developed without considering wall effects, cannot be used for wall bounded combustion modelling, as it leads to wall flame acceleration problem. In this work, a new model was developed to estimate the near wall combustion rate, accommodating quenching effects. The developed correlation was then applied to predict the combustion in two spark ignition engines in combination with the famous Bray–Moss–Libby (BML) combustion model. BML model normally fails when applied to wall bounded combustion due to flame wall acceleration. Results show that the proposed quenching correlation has significantly improved the performance of BML model in wall bounded combustion. As a second step, in order to further enhance the performance, the BML model was modified with the use of Kolmogorov–Petrovski–Piskunov analysis and fractal theory. In which, a new dynamic formulation is proposed to evaluate the mean flame wrinkling scale, there by accounting for spatial inhomogeneity of turbulence. Results indicate that the combination of the quenching correlation and the modified BML model has been successful in eliminating wall flame acceleration problem, while accurately predicting in-cylinder pressure rise, mass burn rates and heat release rates.


Author(s):  
Farhan Rasheed ◽  
Manuel Rommel ◽  
Gabriel Cadilha Marques ◽  
Wolfgang Wenzel ◽  
Mehdi B. Tahoori ◽  
...  

2009 ◽  
Vol 80 (2) ◽  
Author(s):  
A. R. Abate ◽  
A. Poitzsch ◽  
Y. Hwang ◽  
J. Lee ◽  
J. Czerwinska ◽  
...  

2004 ◽  
Vol 29 (8) ◽  
pp. 969-981 ◽  
Author(s):  
Ellen Wohl ◽  
Jessica N. Kuzma ◽  
Nancy E. Brown

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