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September 12, 2025Meteoritics and Planetary Science1 citationsOpen Access

Century‐scale effect of climate change on meteorite falls

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EPEloy Peña‐AsensioDVDenis VidaICIngrid Cnossen

Key Points

  • Atmospheric changes can moderately influence meteorite fireballs, with slight variations in their ablation heights and luminosity.
  • The study simulates the Winchcombe carbonaceous chondrite under climate change projections for 2100, revealing key impacts.
  • Using a semi-empirical model, results show minimal changes in the meteorite mass and brightness during entry into the atmosphere.
  • Findings suggest that while climate change alters atmospheric density, the overall effect on meteorite survival appears minimal.

Abstract

Abstract Climate change is inducing a global atmospheric contraction above the tropopause (~10 km), leading to systematic decrease in neutral air density. The impact of climate change on small meteoroids has already been observed over the last two decades, with documented shifts in their ablation altitudes in the mesosphere (~50–85 km) and lower thermosphere (~85–120 km). This study evaluates the potential effect of these changes on meteorite‐dropping fireballs, which typically penetrate the stratosphere (~10–50 km). As a case study, we simulate the atmospheric entry of the fragile Winchcombe carbonaceous chondrite under projected atmospheric conditions for the year 2100 assuming a moderate future emission scenario. Using a semi‐empirical fragmentation and ablation model, we compare the meteoroid's light curve and deceleration under present and future atmospheric density profiles. The results indicate a modest variation of the ablation heights, with the catastrophic fragmentation occurring 300 m lower and the luminous flight terminating 190 m higher. The absolute magnitude peak remains unchanged, but the fireball would appear 0.5 dimmer above ~120 km. The surviving meteorite mass is reduced by only 0.1 g. Our findings indicate that century‐scale variations in atmospheric density caused by climate change moderately influence bright fireballs and have a minimal impact on meteorite survival.

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Cite This Study

Peña‐Asensio et al. (2025) studied this question.

synapsesocial.com/papers/68d44c4631b076d99fa559f9https://doi.org/10.1111/maps.70046
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