Importance of Wall Flows at the Early Stages of Fire Growth in the Mathematical Modeling of Enclosure Fires
- 1 June 1988
- journal article
- research article
- Published by Taylor & Francis in Combustion Science and Technology
- Vol. 59 (4-6) , 355-369
- https://doi.org/10.1080/00102208808947105
Abstract
This paper considers the negatively buoyant, two-dimensional wall flows that arise during the growth of a compartment fire. Such flows affect the distribution of mass, momentum and energy in the enclosure. The enclosed environment is generally assumed to be comprised of two stably stratified zones in the mathematical modeling of enclosure fires and the transport between these zones is affected by these wall flows. An experimental study is carried out to determine the important thermal characteristics of such negatively buoyant wall flows, particularly the entrainment into the flow, the penetration distance and the heat transfer to the walls of the enclosure. Employing analytical experimental results of buoyancy driven wall and plume flows, the resulting effects in compartment fires are determined. It is shown that the wall flows are very important at the early stages of fire growth,particularly during the establishment of the two zones in the enclosure. Also, the additional transport generated by buoyancy induced wall flows, following the establishment of these zones,is found to be important for a satisfactory modeling of the changing environment in the enclosure.Keywords
This publication has 10 references indexed in Scilit:
- Buoyancy-driven wall flows in enclosure firesSymposium (International) on Combustion, 1988
- The Buoyant Plume-Driven Adiabatic Ceiling Temperature RevisitedJournal of Heat Transfer, 1986
- Effect of opposing buoyancy on the flow in free and wall jetsJournal of Fluid Mechanics, 1986
- On the Significance of a Wall Effect in Enclosures with Growing FiresCombustion Science and Technology, 1984
- Prediction of Corridor Smoke Filling by Zone ModelsCombustion Science and Technology, 1983
- An Experimental Study of Upper Hot Layer Stratification in Full-Scale Multiroom Fire ScenariosJournal of Heat Transfer, 1982
- Heat Transfer From a Buoyant Plume to an Unconfined CeilingJournal of Heat Transfer, 1982
- Development of a stratified ceiling layer in the early stages of a closed‐room fireFire and Materials, 1978
- Turbulent Ceiling-Jet Induced by Large-Scale FiresCombustion Science and Technology, 1975
- Jets and plumes with negative or reversing buoyancyJournal of Fluid Mechanics, 1966