WindCline: Sloping wind tunnel for characterizing flame behavior under variable inclines and wind conditions

Author:

Makowiecki Amanda S.1,Coburn Sean C.1ORCID,Sheppard Samantha2ORCID,Bitterlin Brendan1ORCID,Breda Timothy1ORCID,Dawlatzai Abdul1ORCID,Giannella Robert1ORCID,Jaros Alexandra1,Kling Christopher1ORCID,Kolb Eric1ORCID,Lapointe Caelan1,Simons-Wellin Sam1ORCID,Michelsen Hope A.1ORCID,Daily John W.1,Hannigan Michael1ORCID,Hamlington Peter E.1ORCID,Farnsworth John2ORCID,Rieker Gregory B.1ORCID

Affiliation:

1. Paul M. Rady Department of Mechanical Engineering, University of Colorado Boulder 1 , Boulder, Colorado 80309, USA

2. Ann and H.J. Smead Department of Aerospace Engineering Sciences, University of Colorado Boulder 2 , Boulder, Colorado 80309, USA

Abstract

Developing accurate computational models of wildfire dynamics is increasingly important due to the substantial and expanding negative impacts of wildfire events on human health, infrastructure, and the environment. Wildfire spread and emissions depend on a number of factors, including fuel type, environmental conditions (moisture, wind speed, etc.), and terrain/location. However, there currently exist only a few experimental facilities that enable testing of the interplay of these factors at length scales <1 m with carefully controlled and characterized boundary conditions and advanced diagnostics. Experiments performed at such facilities are required for informing and validating computational models. Here, we present the design and characterization of a tilting wind tunnel (the “WindCline”) for studying wildfire dynamics. The WindCline is unique in that the entire tunnel platform is constructed to pivot around a central axis, which enables the sloping of the entire system without compromising the quality of the flow properties. In addition, this facility has a configurable design for the test section and diffuser to accommodate a suite of advanced diagnostics to aid in the characterization of (1) the parameters needed to establish boundary conditions and (2) flame properties and dynamics. The WindCline thus allows for the measurement and control of several critical wildfire variables and boundary conditions, especially at the small length scales important to the development of high-fidelity computational simulations (10–100 cm). Computational modeling frameworks developed and validated under these controlled conditions can expand understanding of fundamental combustion processes, promoting greater confidence when leveraging these processes in complex combustion environments.

Funder

Strategic Environmental Research and Development Program

Publisher

AIP Publishing

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