Brief communication: An autonomous UAV for catchment-wide monitoring of a debris flow torrent
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Published:2022-12-16
Issue:12
Volume:22
Page:4011-4018
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ISSN:1684-9981
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Container-title:Natural Hazards and Earth System Sciences
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language:en
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Short-container-title:Nat. Hazards Earth Syst. Sci.
Author:
Walter FabianORCID, Hodel Elias, Mannerfelt Erik S.ORCID, Cook KristenORCID, Dietze MichaelORCID, Estermann Livia, Wenner MichaelaORCID, Farinotti DanielORCID, Fengler Martin, Hammerschmidt Lukas, Hänsli Flavia, Hirschberg Jacob, McArdell BrianORCID, Molnar PeterORCID
Abstract
Abstract. Debris flows threaten communities in mountain regions worldwide. Combining modern photogrammetric processing with autonomous unoccupied aerial vehicle (UAV) flights at sub-weekly intervals allows mapping of sediment dynamics in a debris flow catchment. This provides important information for sediment disposition that pre-conditions the catchment for debris flow occurrence. At the Illgraben debris flow catchment in Switzerland, our autonomous UAV launched nearly 50 times in the snow-free periods in 2019–2021 with typical flight intervals of 2–4 d, producing 350–400 images every flight. The observed terrain changes resulting from debris flows exhibit preferred locations of erosion and deposition, including memory effects as previously deposited material is preferentially removed during subsequent debris flows. Such data are critical for the validation of geomorphological process models. Given the remote terrain, the mapped short-term erosion and deposition structures are difficult to obtain with conventional measurements. The proposed method thus fills an observational gap, which ground-based monitoring and satellite-based remote sensing cannot fill as a result of limited access, reaction time, spatial resolution, or involved costs.
Publisher
Copernicus GmbH
Subject
General Earth and Planetary Sciences
Reference34 articles.
1. Badoux, A., Graf, C., Rhyner, J., Kuntner, R., and McArdell, B. W.: A
debris-flow alarm system for the Alpine Illgraben catchment: design and
performance, Nat. Hazards, 49, 517–539, 2009. a, b, c, d, e 2. Bennett, G., Molnar, P., McArdell, B., and Burlando, P.: A probabilistic
sediment cascade model of sediment transfer in the Illgraben, Water Resour.
Res., 50, 1225–1244, 2014. a 3. Bennett, G. L., Molnar, P., McArdell, B. W., Schlunegger, F., and Burlando, P.: Patterns and controls of sediment production, transfer and yield in the
Illgraben, Geomorphology, 188, 68–82, https://doi.org/10.1016/j.geomorph.2012.11.029,
2013. a, b, c 4. Berger, C., McArdell, B. W., and Schlunegger, F.: Sediment transfer patterns at the Illgraben catchment, Switzerland: Implications for the time scales of
debris flow activities, Geomorphology, 125, 421–432, 2011. a, b, c 5. Bonneau, D., Hutchinson, D. J., McDougall, S., DiFrancesco, P.-M., and Evans,
T.: Debris-Flow Channel Headwater Dynamics: Examining Channel Recharge Cycles With Terrestrial Laser Scanning, Front. Earth Sci., 10, 883259, https://doi.org/10.3389/feart.2022.883259, 2022. a
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