Constraints on Chondrule Generation, Disk Dynamics, and Asteroid Accretion from the Compositions of Carbonaceous Meteorites

The elemental and isotopic compositions of meteorites are expected to reflect several key processes that occurred in the early solar system, including the migration of gas and dust throughout the protoplanetary disk, the formation of chondrules, and the accretion of the first planetary bodies. Howev...

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Published in:The Astrophysical Journal
Main Authors: Bryson, James F. J., Brennecka, Gregory A.
Language:unknown
Published: 2022
Subjects:
Online Access:http://www.osti.gov/servlets/purl/1783440
https://www.osti.gov/biblio/1783440
https://doi.org/10.3847/1538-4357/abea12
id ftosti:oai:osti.gov:1783440
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spelling ftosti:oai:osti.gov:1783440 2023-07-30T04:07:11+02:00 Constraints on Chondrule Generation, Disk Dynamics, and Asteroid Accretion from the Compositions of Carbonaceous Meteorites Bryson, James F. J. Brennecka, Gregory A. 2022-09-23 application/pdf http://www.osti.gov/servlets/purl/1783440 https://www.osti.gov/biblio/1783440 https://doi.org/10.3847/1538-4357/abea12 unknown http://www.osti.gov/servlets/purl/1783440 https://www.osti.gov/biblio/1783440 https://doi.org/10.3847/1538-4357/abea12 doi:10.3847/1538-4357/abea12 79 ASTRONOMY AND ASTROPHYSICS 58 GEOSCIENCES 2022 ftosti https://doi.org/10.3847/1538-4357/abea12 2023-07-11T10:03:36Z The elemental and isotopic compositions of meteorites are expected to reflect several key processes that occurred in the early solar system, including the migration of gas and dust throughout the protoplanetary disk, the formation of chondrules, and the accretion of the first planetary bodies. However, the specific origins of the various compositions measured among these rocks are currently poorly constrained, limiting our understanding of these processes. Here, we use previously measured elemental and isotopic compositions of chondrites and iron meteorites to identify that carbonaceous (CC) meteorites are mixtures of noncarbonaceous (NC) material, calcium–aluminum-rich inclusion (CAI) material, and CI (Ivuna-like) material, in varying proportions. These trends indicate that chondrules in CO (Ornans-like), CM (Mighei-like), CV (Vigarano-like), and TL (Tagish Lake) chondrites share near-identical average proportions of CI material, arguing that they were generated through the remelting of preexisting NC chondrules all in the same disk environment. Because this proportion likely evolved over space and time throughout the disk, this similarity argues that these chondrules originate from a restricted spatial region and time interval, favoring their generation through a localized event. Moreover, the compositions of CR (Renazzo-like) chondrites indicate that their constituents formed through mechanisms different from those in CO, CM, CV, and TL chondrites. Furthermore, the recovered proportions of CI material in CC iron meteorites and chondrites together also argue for evolution in either the predominant direction of dust and gas motion in the first ~10 au of the disk or the radial distance of planetesimal accretion throughout the CC reservoir. Other/Unknown Material Tagish SciTec Connect (Office of Scientific and Technical Information - OSTI, U.S. Department of Energy) Tagish ENVELOPE(-134.272,-134.272,60.313,60.313) Tagish Lake ENVELOPE(-134.233,-134.233,59.717,59.717) The Astrophysical Journal 912 2 163
institution Open Polar
collection SciTec Connect (Office of Scientific and Technical Information - OSTI, U.S. Department of Energy)
op_collection_id ftosti
language unknown
topic 79 ASTRONOMY AND ASTROPHYSICS
58 GEOSCIENCES
spellingShingle 79 ASTRONOMY AND ASTROPHYSICS
58 GEOSCIENCES
Bryson, James F. J.
Brennecka, Gregory A.
Constraints on Chondrule Generation, Disk Dynamics, and Asteroid Accretion from the Compositions of Carbonaceous Meteorites
topic_facet 79 ASTRONOMY AND ASTROPHYSICS
58 GEOSCIENCES
description The elemental and isotopic compositions of meteorites are expected to reflect several key processes that occurred in the early solar system, including the migration of gas and dust throughout the protoplanetary disk, the formation of chondrules, and the accretion of the first planetary bodies. However, the specific origins of the various compositions measured among these rocks are currently poorly constrained, limiting our understanding of these processes. Here, we use previously measured elemental and isotopic compositions of chondrites and iron meteorites to identify that carbonaceous (CC) meteorites are mixtures of noncarbonaceous (NC) material, calcium–aluminum-rich inclusion (CAI) material, and CI (Ivuna-like) material, in varying proportions. These trends indicate that chondrules in CO (Ornans-like), CM (Mighei-like), CV (Vigarano-like), and TL (Tagish Lake) chondrites share near-identical average proportions of CI material, arguing that they were generated through the remelting of preexisting NC chondrules all in the same disk environment. Because this proportion likely evolved over space and time throughout the disk, this similarity argues that these chondrules originate from a restricted spatial region and time interval, favoring their generation through a localized event. Moreover, the compositions of CR (Renazzo-like) chondrites indicate that their constituents formed through mechanisms different from those in CO, CM, CV, and TL chondrites. Furthermore, the recovered proportions of CI material in CC iron meteorites and chondrites together also argue for evolution in either the predominant direction of dust and gas motion in the first ~10 au of the disk or the radial distance of planetesimal accretion throughout the CC reservoir.
author Bryson, James F. J.
Brennecka, Gregory A.
author_facet Bryson, James F. J.
Brennecka, Gregory A.
author_sort Bryson, James F. J.
title Constraints on Chondrule Generation, Disk Dynamics, and Asteroid Accretion from the Compositions of Carbonaceous Meteorites
title_short Constraints on Chondrule Generation, Disk Dynamics, and Asteroid Accretion from the Compositions of Carbonaceous Meteorites
title_full Constraints on Chondrule Generation, Disk Dynamics, and Asteroid Accretion from the Compositions of Carbonaceous Meteorites
title_fullStr Constraints on Chondrule Generation, Disk Dynamics, and Asteroid Accretion from the Compositions of Carbonaceous Meteorites
title_full_unstemmed Constraints on Chondrule Generation, Disk Dynamics, and Asteroid Accretion from the Compositions of Carbonaceous Meteorites
title_sort constraints on chondrule generation, disk dynamics, and asteroid accretion from the compositions of carbonaceous meteorites
publishDate 2022
url http://www.osti.gov/servlets/purl/1783440
https://www.osti.gov/biblio/1783440
https://doi.org/10.3847/1538-4357/abea12
long_lat ENVELOPE(-134.272,-134.272,60.313,60.313)
ENVELOPE(-134.233,-134.233,59.717,59.717)
geographic Tagish
Tagish Lake
geographic_facet Tagish
Tagish Lake
genre Tagish
genre_facet Tagish
op_relation http://www.osti.gov/servlets/purl/1783440
https://www.osti.gov/biblio/1783440
https://doi.org/10.3847/1538-4357/abea12
doi:10.3847/1538-4357/abea12
op_doi https://doi.org/10.3847/1538-4357/abea12
container_title The Astrophysical Journal
container_volume 912
container_issue 2
container_start_page 163
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