Calcium–aluminum‐rich inclusions in non‐carbonaceous chondrites: Abundances, sizes, and mineralogy

Author:

Dunham E. T.12ORCID,Sheikh A.3,Opara D.3,Matsuda N.1,Liu M.‐C.14,McKeegan K. D.1

Affiliation:

1. Department of Earth, Planetary, and Space Sciences University of California, Los Angeles Los Angeles California 90025 USA

2. Department of Earth and Planetary Science University of California, Santa Cruz Santa Cruz California 95064 USA

3. Harvard‐MIT Science Research Mentoring Program Boston Massachusetts 02142 USA

4. Lawrence Livermore National Laboratory Livermore California 94550 USA

Abstract

AbstractAs the Sun was forming, calcium–aluminum‐rich inclusions (CAIs) were the first rocks to have condensed in the hottest regions of the solar nebula disk. Carbonaceous chondrites (CCs) contain abundant CAIs but are thought to have accreted in the outer Solar System, requiring that CAIs must have been transported outward. Curiously, CAIs are rare in ordinary, enstatite, rumuruti, and kakangari chondrites, non‐carbonaceous chondrites (NCs), that likely formed in the inner Solar System. Thus, CAI abundances and characteristics can provide constraints on the early dynamical evolution of the disk. In this work, we address whether the hypothesis of an early‐formed proto‐Jupiter “opening a gap” in the disk can explain the dichotomy in the relative abundance of CAIs in CC and NC chondrites. We searched 76 NC meteorite sections to find 232 CAIs which have an average apparent diameter of 46 μm and comprise 0.01 area%, about half the size of and ~200 times less abundant than CC CAIs on average. Unlike CC CAIs, only 4% of the NC CAIs contain melilite and most contain alteration features suggesting that NC CAIs underwent pervasive fluid‐assisted thermal metamorphism on asteroidal parent bodies. However, based on NC CAI populations correlating with meteorite metamorphic grade, we argue that disk dynamics is likely the primary reason behind the existence of small (<100 μm) and rare NC CAIs. Our data support astrophysical models which suggest that, after outward transport of CAIs, formation of a gap in the disk trapped CAIs in the outer Solar System.

Funder

Aeronautics Research Mission Directorate

Heising-Simons Foundation

Publisher

Wiley

Subject

Space and Planetary Science,Geophysics

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1. Chondrule Properties and Formation Conditions;Space Science Reviews;2024-09

2. Compositions of iron-meteorite parent bodies constrain the structure of the protoplanetary disk;Proceedings of the National Academy of Sciences;2024-05-28

3. Isotopic evolution of the inner solar system revealed by size-dependent oxygen isotopic variations in chondrules;Geochimica et Cosmochimica Acta;2024-04

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