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H. H. Xiao, J. H. Sun and P. Chen (2014) Journal Of Hazardous Materials 268 132-139.
Date: 2015-03-25   Author: SKLFS  ,   Source: SKLFS  ,
 

H. H. Xiao, J. H. Sun and P. Chen (2014) Experimental and numerical study of premixed hydrogen/air flame propagating in a combustion chamber. Journal/Journal Of Hazardous Materials 268 132-139. [In English]
Web link: http://dx.doi.org/10.1016/j.jhazmat.2013.12.060
Keywords: Hydrogen/air mixture, Thickened flame, Distorted tulip flame, Wall, friction, Vortex, LARGE-EDDY SIMULATION, TULIP FLAME, LAMINAR FLAME, CLOSED TUBES, ACCELERATION, MODEL, ENVIRONMENTS, INSTABILITY, DETONATION, TRANSITION

Abstract: An experimental and numerical study of dynamics of premixed hydrogen/air flame in a closed explosion vessel is described. High-speed shlieren cinematography and pressure recording are used to elucidate the dynamics of the combustion process in the experiment. A dynamically thickened flame model associated with a detailed reaction mechanism is employed in the numerical simulation to examine the flame-flow interaction and effect of wall friction on the flame dynamics. The shlieren photographs show that the flame develops into a distorted tulip shape after a well-pronounced classical tulip front has been formed. The experimental results reveal that the distorted tulip flame disappears with the primary tulip cusp and the distortions merging into each other, and then a classical tulip is repeated. The combustion dynamics is reasonably reproduced in the numerical simulations, including the variations in flame shape and position, pressure build-up and periodically oscillating behavior. It is found that both the tulip and distorted tulip flames can be created in the simulation with free-slip boundary condition at the walls of the vessel and behave in a manner quite close to that in the experiments. This means that the wall friction could be unimportant for the tulip and distorted tulip formation although the boundary layer formed along the sidewalls has an influence to a certain extent on the flame behavior near the sidewalls. The distorted tulip flame is also observed to be produced in the absence of vortex flow in the numerical simulations. The TF model with a detailed chemical scheme is reliable for investigating the dynamics of distorted tulip flame propagation and its underlying mechanism. (C) 2014 Elsevier B.V. All rights reserved.

 
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