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International Journal of Wildland Fire International Journal of Wildland Fire Society
Journal of the International Association of Wildland Fire
RESEARCH ARTICLE (Open Access)

Pixels to pyrometrics: UAS-derived infrared imagery to evaluate and monitor prescribed fire behaviour and effects

Leo O’Neill https://orcid.org/0000-0001-5734-0979 A , Peter Z Fulé A * , Adam Watts B , Chris Moran C , Bryce Hopkins D , Eric Rowell E , Andrea Thode A and Fatemeh Afghah D
+ Author Affiliations
- Author Affiliations

A School of Forestry, Northern Arizona University, 200 E Pine Knoll Drive, Flagstaff, AZ 86011, USA.

B Pacific Wildland Fire Sciences Laboratory, U.S. Forest Service, Seattle, WA 98103, USA.

C National Center for Landscape Fire Analysis, University of Montana, 32 Campus Drive, CHCP 428, Missoula, MT 59812, USA.

D Holcombe Department of Electrical and Computer Engineering, Clemson University, Clemson, SC 29631, USA.

E Department of Atmospheric Science, Desert Research Institute, Reno, NV 89512, USA.

* Correspondence to: Pete.Fule@nau.edu

International Journal of Wildland Fire 33, WF24067 https://doi.org/10.1071/WF24067
Submitted: 16 April 2024  Accepted: 21 October 2024  Published: 20 November 2024

© 2024 The Author(s) (or their employer(s)). Published by CSIRO Publishing on behalf of IAWF. This is an open access article distributed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (CC BY-NC-ND)

Abstract

Background

Prescribed fire is vital for fuel reduction and ecological restoration, but the effectiveness and fine-scale interactions are poorly understood.

Aims

We developed methods for processing uncrewed aircraft systems (UAS) imagery into spatially explicit pyrometrics, including measurements of fuel consumption, rate of spread, and residence time to quantitatively measure three prescribed fires.

Methods

We collected infrared (IR) imagery continuously (0.2 Hz) over prescribed burns and one experimental calibration burn, capturing fire progression and combustion for multiple hours.

Key results

Pyrometrics were successfully extracted from UAS-IR imagery with sufficient spatiotemporal resolution to effectively measure and differentiate between fires. UAS-IR fuel consumption correlated with weight-based measurements of 10 1-m2 experimental burn plots, validating our approach to estimating consumption with a cost-effective UAS-IR sensor (R2 = 0.99; RMSE = 0.38 kg m−2).

Conclusions

Our findings demonstrate UAS-IR pyrometrics are an accurate approach to monitoring fire behaviour and effects, such as measurements of consumption. Prescribed fire is a fine-scale process; a ground sampling distance of <2.3 m2 is recommended. Additional research is needed to validate other derived measurements.

Implications

Refined fire monitoring coupled with refined objectives will be pivotal in informing fire management of best practices, justifying the use of prescribed fire and providing quantitative feedback in an uncertain environment.

Keywords: fire effects, fire radiative energy (FRE), fire radiative power (FRP), fire rate of spread, fuel consumption, image stabilisation, thermal imagery, unmanned aerial vehicles (UAV), uncrewed aircraft systems (UAS).

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