A Numerical Approach to Study Ablation of Large Bolides: Application to Chelyabinsk

Author:

Trigo-Rodríguez Josep M.12ORCID,Dergham Joan12,Gritsevich Maria3456,Lyytinen Esko5,Silber Elizabeth A.78ORCID,Williams Iwan P.9

Affiliation:

1. Institut de Ciències de l’Espai–CSIC, Campus UAB, Facultat de Ciències, Torre C5-parell-2a, 08193 Bellaterra, Barcelona, Catalonia, Spain

2. Institut d’Estudis Espacials de Catalunya (IEEC), Edif. Nexus, c/Gran Capità, 2-4, 08034 Barcelona, Catalonia, Spain

3. Finnish Geospatial Research Institute (FGI), Geodeetinrinne 2, FI-02430 Masala, Finland

4. Department of Physics, University of Helsinki, Gustaf Hällströmin katu 2a, P.O. Box 64, FI-00014 Helsinki, Finland

5. Finnish Fireball Network, Helsinki, Finland

6. Institute of Physics and Technology, Ural Federal University, Mira str. 19., 620002 Ekaterinburg, Russia

7. Department of Earth Sciences, Western University, London, ON N6A 5B7, Canada

8. The Institute for Earth and Space Exploration, Western University, London, ON N6A 3K7, Canada

9. Astronomy Unit, Queen Mary, University of London, Mile End Rd., London E1 4NS, UK

Abstract

In this study, we investigate the ablation properties of bolides capable of producing meteorites. The casual dashcam recordings from many locations of the Chelyabinsk superbolide associated with the atmospheric entry of an 18 m in diameter near-Earth object (NEO) have provided an excellent opportunity to reconstruct its atmospheric trajectory, deceleration, and heliocentric orbit. In this study, we focus on the study of the ablation properties of the Chelyabinsk bolide on the basis of its deceleration and fragmentation. We explore whether meteoroids exhibiting abrupt fragmentation can be studied by analyzing segments of the trajectory that do not include a disruption episode. We apply that approach to the lower part of the trajectory of the Chelyabinsk bolide to demonstrate that the obtained parameters are consistent. To do that, we implemented a numerical (Runge–Kutta) method appropriate for deriving the ablation properties of bolides based on observations. The method was successfully tested with the cases previously published in the literature. Our model yields fits that agree with observations reasonably well. It also produces a good fit to the main observed characteristics of Chelyabinsk superbolide and provides its averaged ablation coefficient σ = 0.034 s2 km−2. Our study also explores the main implications for impact hazard, concluding that tens of meters in diameter NEOs encountering the Earth in grazing trajectories and exhibiting low geocentric velocities are penetrating deeper into the atmosphere than previously thought and, as such, are capable of producing meteorites and even damage on the ground.

Funder

Agencia Estatal de Investigación

Publisher

Hindawi Limited

Subject

Space and Planetary Science,Astronomy and Astrophysics

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