Skip to main content
U.S. flag

An official website of the United States government

Official websites use .gov
A .gov website belongs to an official government organization in the United States.

Secure .gov websites use HTTPS
A lock ( ) or https:// means you’ve safely connected to the .gov website. Share sensitive information only on official, secure websites.

Convective heat transfer in pine forest litter beds

Published

Author(s)

Eric Mueller, Michael Gallagher, Nicholas Skowronski, Rory Hadden

Abstract

To properly parameterize physics-based models of wildland fire behavior, it is necessary to understand the magnitude of convective heat transfer in various scenarios. In order to do so, we isolated the convective heating process in an idealized wildland fuel - pine needle litter layers. A heated wind tunnel was used to obtain a Reynolds number dependent correlation for the Nusselt number for: (1) a single representative fuel element, and (2) the bulk porous medium - both exposed to sudden pulses of high temperature air. The former was obtained through resistive thermometry and the latter through optimization of a 1-dimensional advection-diffusion model, trained by gas-phase measurements. It was determined that the Nusselt number for a single fuel element, when oriented perpendicular to the flow, did not significantly deviate from that of a single isolated cylinder. However, the correlation for the bulk medium showed a Nusselt number roughly 12-26% less than that of a single cylinder, over the range studied. This was attributed to the complex orientation of individual elements within the bed and has implications for modeling ignition and flame spread in porous fuels.
Citation
International Journal of Heat and Mass Transfer
Volume
195

Keywords

Fire modeling, wildland fire, multiphase flow, porous media

Citation

Mueller, E. , Gallagher, M. , Skowronski, N. and Hadden, R. (2022), Convective heat transfer in pine forest litter beds, International Journal of Heat and Mass Transfer, [online], https://doi.org/10.1016/j.ijheatmasstransfer.2022.123057, https://tsapps.nist.gov/publication/get_pdf.cfm?pub_id=934178 (Accessed December 28, 2024)

Issues

If you have any questions about this publication or are having problems accessing it, please contact reflib@nist.gov.

Created July 5, 2022, Updated February 23, 2024