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Mineralogy, Petrology, and Oxygen-isotope Compositions of Magnetite ± Fayalite Assemblages in CO3, CV3, and LL3 ChondritesWe report on the mineralogy, petrology, and O-isotope compositions of magnetite and fayalite (Fa90−100) from several metasomatically altered and weakly metamorphosed carbonaceous (Y-81020 [CO3.05], EET 90043 [CO3.1], MAC 88107 [CO3.1-like], and Kaba [oxidized Bali-like CV3.1]) and unequilibrated ordinary chondrites (UOCs; Semarkona [LL3.00], MET 00452 [LL3.05], MET 96503 [LL3.05], EET 910161 [LL3.05], Ngawi [LL3.0−3.6 breccia], and Vicencia [LL3.2]). In MAC 88107, EET 90043, and Kaba, nearly pure fayalite (Fa98−100) associates with phyllosilicates, magnetite, Fe, Ni-sulfides, and hedenbergite (Fs~50Wo~50), and occurs in all chondritic components—chondrules, matrices,and refractory inclusions. In UOCs, nearly pure fayalite (Fa95−98) associates withphyllosilicates and magnetite, and occurs mainly in matrices and fine-grained chondrulerims. Oxygen-isotope compositions of fayalite and magnetite in UOCs, COs, CVs, and MAC 88107 are in disequilibrium with those of chondrule olivine and low-Ca pyroxene phenocrysts, and plot along mass-dependent fractionation lines with slope of~0.5, butdifferent 17O (~+4.3 1.4‰,−0.2 0.6‰,−1.5 1‰, and−1.8 0.8‰, respectively). Based on the mineralogical observations, thermodynamic analysis, O-isotope compositions, and recently reported experimental data, we infer that (1) fayalite and magnetite in COs,CVs, MAC 88107, and UOCs resulted from aqueous fluid–rock interaction on the chondrite parent asteroids that occurred at low local water-to-rock mass ratios (0.1−0.4) and elevated temperatures (~100−300°C), and (2) 17O of fayalite and magnetite reflects O-isotope compositions of aqueous fluids on the host meteorite parent bodies. The observed differences in 17O of fayalite–magnetite assemblages in UOCs, CVs, COs, and MAC 88107suggest that water ices that accreted into the ordinary chondrite and carbonaceous chondrite parent asteroids had different 17O, implying spatial and/or temporal variations in O-isotope compositions of water in the protoplanetary disk.
Document ID
20220007621
Acquisition Source
2230 Support
Document Type
Accepted Manuscript (Version with final changes)
Authors
Alexander N Krot
(University of Hawaii at Manoa Honolulu, Hawaii, United States)
Patricia M. Doyle
(International School of Cape Town Western Cape, Wynberg, South Africa)
Kazuhide Nagashina
(University of Hawaii at Manoa Honolulu, Hawaii, United States)
Elena Dobrica
(University of Hawaii at Manoa Honolulu, Hawaii, United States)
Michail I. Petaev
(Harvard University Cambridge, Massachusetts, United States)
Date Acquired
May 17, 2022
Publication Date
October 20, 2021
Publication Information
Publication: Meteoritics & Planetary Science
Publisher: Wiley
Volume: 57
Issue: 2
Issue Publication Date: February 1, 2022
ISSN: 1086-9379
e-ISSN: 1945-5100
Subject Category
Meteorology And Climatology
Funding Number(s)
CONTRACT_GRANT: NNX17AE22G
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
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