The First Instrumentally Documented Fall of an Iron Meteorite: atmospheric trajectory and ground impact

Fuente: arXiv
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Hauptverfasser: Moilanen, Jarmo, Gritsevich, Maria, Visuri, Jaakko
Format: Preprint
Veröffentlicht: 2026
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author Moilanen, Jarmo
Gritsevich, Maria
Visuri, Jaakko
author_facet Moilanen, Jarmo
Gritsevich, Maria
Visuri, Jaakko
contents Iron meteorite falls are rare compared to stony meteorites, and until recently no iron meteorite had a reliably determined pre-atmospheric orbit. This changed on 2020 November 7, when a bright fireball was observed across Sweden and neighboring regions, with optical, acoustic, and seismic detections extending up to 665 km from the trajectory. After a month-long recovery effort, a 13.8 kg iron meteorite was discovered near Ådalen, representing the first instrumentally recorded and recovered fall of its type and the first iron meteorite with a derivable heliocentric orbit; the event also exhibited the lowest terminal height measured for a well-documented fireball. We combine optical, infrasound, and seismic data to reconstruct the luminous trajectory and employ a Monte Carlo model to simulate the dark flight phase and predicted strewn field, while also investigating the plausibility of a ricochet prior to final deposition. Our analysis identifies distinct aerodynamic properties of iron meteoroids compared to stony bodies, including the influence of streamlined shapes and deep regmaglypts on drag and flight stability, underscoring the need to incorporate iron-specific parameters into entry models to constrain atmospheric dynamics and improve recovery predictions for future events.
format Preprint
id arxiv_https___arxiv_org_abs_2602_15440
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle The First Instrumentally Documented Fall of an Iron Meteorite: atmospheric trajectory and ground impact
Moilanen, Jarmo
Gritsevich, Maria
Visuri, Jaakko
Earth and Planetary Astrophysics
Instrumentation and Methods for Astrophysics
Geophysics
Instrumentation and Detectors
Popular Physics
Iron meteorite falls are rare compared to stony meteorites, and until recently no iron meteorite had a reliably determined pre-atmospheric orbit. This changed on 2020 November 7, when a bright fireball was observed across Sweden and neighboring regions, with optical, acoustic, and seismic detections extending up to 665 km from the trajectory. After a month-long recovery effort, a 13.8 kg iron meteorite was discovered near Ådalen, representing the first instrumentally recorded and recovered fall of its type and the first iron meteorite with a derivable heliocentric orbit; the event also exhibited the lowest terminal height measured for a well-documented fireball. We combine optical, infrasound, and seismic data to reconstruct the luminous trajectory and employ a Monte Carlo model to simulate the dark flight phase and predicted strewn field, while also investigating the plausibility of a ricochet prior to final deposition. Our analysis identifies distinct aerodynamic properties of iron meteoroids compared to stony bodies, including the influence of streamlined shapes and deep regmaglypts on drag and flight stability, underscoring the need to incorporate iron-specific parameters into entry models to constrain atmospheric dynamics and improve recovery predictions for future events.
title The First Instrumentally Documented Fall of an Iron Meteorite: atmospheric trajectory and ground impact
topic Earth and Planetary Astrophysics
Instrumentation and Methods for Astrophysics
Geophysics
Instrumentation and Detectors
Popular Physics
url https://arxiv.org/abs/2602.15440