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Analysis of meteoroid ablation based on plasma wind-tunnel experiments, surface characterization, and numerical simulations

  • Meteoroids largely disintegrate during their entry into the atmosphere, contributing significantly to the input of cosmic material to Earth. Yet, their atmospheric entry is not well understood. Experimental studies on meteoroid material degradation in high-enthalpy facilities are scarce and when the material is recovered after testing, it rarely provides sufficient quantitative data for the validation of simulation tools. In this work, we investigate the thermochemical degradation mechanism of a meteorite in a high-enthalpy ground facility able to reproduce atmospheric entry conditions. A testing methodology involving measurement techniques previously used for the characterization of thermal protection systems for spacecraft is adapted for the investigation of ablation of alkali basalt (employed here as meteorite analog) and ordinary chondrite samples. Both materials are exposed to a cold-wall stagnation point heat flux of 1.2 MW m(-2). Numerous local pockets that formed on the surface of the samples by the emergence of gas bubblesMeteoroids largely disintegrate during their entry into the atmosphere, contributing significantly to the input of cosmic material to Earth. Yet, their atmospheric entry is not well understood. Experimental studies on meteoroid material degradation in high-enthalpy facilities are scarce and when the material is recovered after testing, it rarely provides sufficient quantitative data for the validation of simulation tools. In this work, we investigate the thermochemical degradation mechanism of a meteorite in a high-enthalpy ground facility able to reproduce atmospheric entry conditions. A testing methodology involving measurement techniques previously used for the characterization of thermal protection systems for spacecraft is adapted for the investigation of ablation of alkali basalt (employed here as meteorite analog) and ordinary chondrite samples. Both materials are exposed to a cold-wall stagnation point heat flux of 1.2 MW m(-2). Numerous local pockets that formed on the surface of the samples by the emergence of gas bubbles reveal the frothing phenomenon characteristic of material degradation. Time-resolved optical emission spectroscopy data of ablated species allow us to identify the main radiating atoms and ions of potassium, calcium, magnesium, and iron. Surface temperature measurements provide maximum values of 2280 K for the basalt and 2360 K for the chondrite samples. We also develop a material response model by solving the heat conduction equation and accounting for evaporation and oxidation reaction processes in a 1D Cartesian domain. The simulation results are in good agreement with the data collected during the experiments, highlighting the importance of iron oxidation to the material degradation.zeige mehrzeige weniger

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Metadaten
Verfasserangaben:Bernd HelberORCiD, Bruno DiasORCiD, Federico BariselliORCiD, Luiza F. Zavalan, Lidia PittarelloORCiD, Steven GoderisORCiD, Bastien SoensORCiD, Seann J. McKibbinORCiD, Philippe ClaeysORCiD, Thierry E. MaginORCiD
DOI:https://doi.org/10.3847/1538-4357/ab16f0
ISSN:0004-637X
ISSN:1538-4357
Titel des übergeordneten Werks (Englisch):The astrophysical journal : an international review of spectroscopy and astronomical physics
Verlag:IOP Publ. Ltd.
Verlagsort:Bristol
Publikationstyp:Wissenschaftlicher Artikel
Sprache:Englisch
Datum der Erstveröffentlichung:10.05.2019
Erscheinungsjahr:2019
Datum der Freischaltung:11.02.2021
Freies Schlagwort / Tag:meteorites, meteors, meteoroids; plasmas; techniques: spectroscopic
Band:876
Ausgabe:2
Seitenanzahl:14
Fördernde Institution:Research Foundation Flanders (FWO)FWO; Funds for Research Training in Industry and Agriculture (FRIA)Fonds de la Recherche Scientifique - FNRS; Belgian Science Policy Office (BELSPO) under the Belgian Research Action through Interdisciplinary Networks (BRAIN) [CONTRAT BR/143/A2/METRO]
Organisationseinheiten:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Umweltwissenschaften und Geographie
DDC-Klassifikation:5 Naturwissenschaften und Mathematik / 55 Geowissenschaften, Geologie / 550 Geowissenschaften
Peer Review:Referiert
Publikationsweg:Open Access / Hybrid Open-Access
Lizenz (Englisch):License LogoCreative Commons - Namensnennung 3.0 Unported
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