Skip to main content
Abstract

An idealized model for droplet vaporization or combustion in the Burke-Schumann reaction-sheet approximation is analyzed in terms of a Peclet number based on the Stefan velocity, taken to be of order unity, for Lewis numbers of unity and for small values of a parameter epsilon, defined as the ratio of the convective velocity far from the droplet to the Stefan velocity at its surface. Asymptotic solutions for the velocity, pressure, and mixture-fraction fields are obtained through second order in epsilon. The results are employed to calculate the effects of convection on the burning rate and on the flame shape. The prediction that the burning-rate constant increases linearly with epsilon for small values of epsilon is shown to be consistent with available experimental data. It is demonstrated that reasonable values of diffusivities provide approximate agreement of predicted burning rates and flame shapes with results of measurements. (c) 2005 The Combustion Institute. Published by Elsevier Inc. All rights reserved.

Year of Publication
2005
Journal
Combustion and Flame
Volume
143
Number of Pages
599-612
ISBN Number
0010-2180
Accession Number
WOS:000234073100017
DOI
10.1016/j.combustflame.2005.08.025
Alternate Journal
Combust Flame
We are professional and reliable provider since we offer customers the most powerful and beautiful themes. Besides, we always catch the latest technology and adapt to follow world’s new trends to deliver the best themes to the market.

Contact info

We are the leaders in the building industries and factories. We're word wide. We never give up on the challenges.

Recent Posts