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Detecting snow avalanche activity using infrasound: Hooker Valley, New Zealand

Abstract

Snow avalanches pose considerable hazards to people and infrastructure in alpine environments. Traditional avalanche monitoring relies on meteorological data and visual observations, which can be limited in scope and timeliness. Infrasound offers a promising complementary monitoring tool by detecting the low-frequency sound waves generated by avalanches. Here, we present infrasound and camera observations during a 50-day field campaign in the Hooker Valley of Aoraki/Mount Cook National Park, New Zealand. Our study detected seven avalanches with the cameras, whereas the infrasound system identified only one of these events, which was the largest and occurred under conditions that likely favoured infrasound propagation. The infrasound system recorded numerous other events not captured by the cameras, indicating the benefit of further investigation to determine their sources. These findings highlight the potential of infrasound technology for detecting avalanches and providing broad spatial coverage, capturing events in areas not monitored by cameras, while also showcasing limitations in infrasound capabilities. The limited detection of smaller avalanches underscores the opportunity for further research to enhance detection capabilities and understand environmental influences such as snow cover and wind noise. Overall, this study emphasises the utility of multidisciplinary monitoring techniques to improve avalanche detection in alpine environments.

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90° N90° S · 180° W ← longitude → 180° E
Source-reported bounding extent: -43.721673594304434° to -43.599726450780764° latitude; 170.1412259579667° to 170.26486817242153° longitude. This indicates report coverage, not an exact sampling location. View area on OpenStreetMap.

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BibTeXRIS

Leighton Watson, Aubrey Miller, Jacob F. Anderson, Liam Toney, Alberto Ardid. 2026-02-17. Detecting snow avalanche activity using infrasound: Hooker Valley, New Zealand. https://doi.org/10.1002/jgo2.70015

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