Title of article :
Downward flame spread over a thick PMMA slab in an opposed flow environment: experiment and modeling
Author/Authors :
Chen، C. H. نويسنده , , Wu، K. K. نويسنده , , Fan، W. F. نويسنده , , Liou، T. M. نويسنده , , Pan، I. J. نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2003
Pages :
90
From page :
707
To page :
796
Abstract :
This work investigates experimentally and theoretically the downward spread of a flame over a thick polymethylmethacrylate (PMMA) slab with an opposed flow of air. Simulation results, using an unsteady combustion model with mixed convection, indicate that the ignition delay time increases with a decreasing opposed-flow temperature or increasing velocity. The ignition delay time is nearly constant at a low opposed flow velocity, i.e., .... Experiments were conducted at three different opposed flow temperatures and velocities, namely, ..., and 353 K and ..., respectively. Measurements included the flame-spread rate and temperature distributions, using thermocouples and laser-holographic interferometry. The qualitative trends of the flamespread rate and thermal boundary layer thickness, as obtained experimentally and from numerical predictions, were identical. For a quantitative comparison, the predicted and experimental flame-spread rates correlated well with each other, except at the lowest velocity .... The discrepancies between the measured and predicted thermal boundary layer thicknesses decreased with an increasing flow velocity. The quantitative agreement with a high velocity indicates that the spread of an opposed flame is mainly controlled by the flame front, whereas the discrepancies at low flow rates demonstrate the importance of radiation, the finite length of the fuel, and also three-dimensional effects, which were not considered in the model. The temperature profiles around the flame front measured by interferometric photographs indicate a recirculation flow there, as predicted by the simulation.
Keywords :
flame spread , Opposed flow velocity , Opposed flow temperature
Journal title :
Combustion and Flame
Serial Year :
2003
Journal title :
Combustion and Flame
Record number :
102763
Link To Document :
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