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Journal Article

Numerical Modeling of Infrasound Energy Radiation by Debris Flow Events

M. Coco; E. Marchetti; O. Morandi
Pure and Applied Geophysics · Vol. 178, Issue 6 · pp. 2301-2313 · 2021

Abstract

Debris flows constitute a severe natural hazard in Alpine regions. Studies are performed to understand the event predictability and to identify early warning systems and procedures. These are based both on sensors deployed along the channels or on the amplitude of seismic and infrasound waves radiated by the flow and recorded far away. Despite being very promising, infrasound cannot be used to infer the source characteristics due to the lack of a physical model of the infrasound energy radiated by debris flows. Here the simulation of water flow along a simple channel is presented, experiencing the fall from a dam, performed within the open source simulation code OpenFOAM. The pressure perturbation within the atmosphere produced by the flow is extracted and the infrasound signature of the events as a function of the flow characteristics is defined. Numerical results suggest that infrasound is radiated immediately downstream of the dam with amplitude and period that scale with dam height and water level. Modeled infrasound waveform is interpreted as being produced mostly by waves at the water free surface developing downstream of the dam. Despite the effect of sediments is not considered in this first study and will be implemented in future investigations, numerical results obtained with this simple model are in general agreement with experimental results obtained from array analysis of infrasound data recorded at Illgraben, Switzerland. Results highlight how numerical modeling can provide critical information to define a source mechanism of infrasound energy radiation by debris-flow, that is required also to improve early warning systems.

Bibliographic Information

JournalPure and Applied Geophysics
PublisherSpringer
Publication Date2021-06-01
Publication Year2021
Volume178
Issue6
Pages2301-2313
Document TypeJournal Article
Print ISSN0033-4553
eISSN1420-9136
DOI10.1007/s00024-021-02759-2

Access Information

NARA Access Coverage1939-01-01~Current
Journal Homepagehttps://www.springer.com/journal/24
Publisher PageOpen Publisher Page
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