𝔖 Bobbio Scriptorium
✦   LIBER   ✦

Modeling on burning of large-scale vertical parallel surfaces with fire-induced flow

✍ Scribed by H.Y Wang; P Joulain; J.M Most


Book ID
104341895
Publisher
Elsevier Science
Year
1999
Tongue
English
Weight
447 KB
Volume
32
Category
Article
ISSN
0379-7112

No coin nor oath required. For personal study only.

✦ Synopsis


An efficient numerical technique is developed to predict the burning rate in a large-scale vertical parallel PMMA walls fire with a buoyancy-induced flow. The strong coupling of the pyrolysis rate and wall fire-induced flow, in parallel configuration, is modeled by including the effects of the streamwise pressure gradient for the first time. Transport equations for mass, momentum, gas-phase mixture fraction and enthalpy are solved using a finite volume method. A two-dimensional adaptation of the Discrete Ordinates Method is used for estimating the flame radiation energy to the burning wall. Soot model is also included in order to permit application to radiative heat transfer within a flame. The results indicate that with increase of the wall spacing/height (ΒΈ/H) ratio, convection flux increases slightly, and however, contribution by radiation decreases considerably from 90 to 70% of the total heat feedback to the pyrolyzing surface. It appears clearly that when the wall spacing/height ratio becomes so large (ΒΈ/H'0.3) that the interaction of the two diffusion flames between the opposing burning walls is unimportant, the predicted burning rate decreases dramatically and follows closely to the experimental data from a single 3.56 m high PMMA slab. Moreover, the analysis claims a maximum local burning rate for a wall spacing/height ratio (ΒΈ/H+0.1).


πŸ“œ SIMILAR VOLUMES


Three-dimensional modeling for predictio
✍ H.Y. Wang; P. Joulain πŸ“‚ Article πŸ“… 1996 πŸ› Elsevier Science 🌐 English βš– 64 KB

## Contents of Related Journals An experimental investigation of the turbulence structure of a medium-scale methanol pool fire has been undertaken to provide further insight into the complex physical phenomena which drive mixing and entrainment and thereby control development of the fire flow fiel