Modal abundances of CAIs: Implications for bulk chondrite element abundances and fractionations
arXiv:0810.2174 · doi:10.1111/j.1945-5100.2008.tb00649.x
Abstract
Modal abundances of Ca,Al-rich inclusions (CAIs) are poorly known and reported data scatter across large ranges. We combine reported CAI modal abundances and our own set, and present a complete list of CAI modal abundances in carbonaceous chondrites. This includes (in area%): CV: 2.98, CM: 1.21, Acfer 094: 1.12, CO: 0.99, CK/CV (Ningqiang & DaG 055): 0.77, CK: 0.2, CR: 0.12 and CB: 0.1. CAIs are Poisson distributed and if only small areas (<1000 mm2) are studied, the data are probably not representative of the true CAI modal abundances, explaining their reported large scatter in a single chondrite group. Carbonaceous chondrites have excess bulk Al concentrations when compared to the CI-chondritic value. We find a correlation between this excess and CAI modal abundances and conclude that the excess Al was delivered by CAIs. The excess Al is only a minor fraction (usually ~10 rel%, but 25 rel% in case of CVs) of the bulk chondrite Al and cannot have contributed much 26Al to heat the chondrite parent body. Ordinary, enstatite, R- and K-chondrites have an Al deficit relative to CI chondrites and only very low CAI modal abundances, if any are present at all. Carbonaceous chondrites also had an initial Al deficit if the contribution of Al delivered by CAIs is subtracted. Therefore all chondrites probably lost a refractory rich high-T component. Only minor amounts of CAIs are present in the matrix or have been present in the chondrule precursor aggregates. Most CAI size distributions contain more than one size population, indicating that CAIs from within a single meteorite group had different origins.
Meteoritics & Planetary Sciences (in press)
Cited by in corpus (23)
- The Effect of Jupiter's Formation on the Distribution of Refractory Elements and Inclusions in Meteorites
- Abundance, Major Element Composition and Size of Components and Matrix in CV, CO and Acfer 094 Chondrites
- The Origin of Chondrules: Constraints from Matrix-Chondrule Complementarity
- What are little worlds made of? Stellar abundances and the building blocks of planets
- Probing the Protosolar Disk Using Dust Filtering at Gaps in the Early Solar System
- On the aerodynamic redistribution of chondrite components in protoplanetary disks
- Testing the chondrule-rich accretion model for planetary embryos using calcium isotopes
- The Volatility Trend of Protosolar and Terrestrial Elemental Abundances
- Subsolar Al/Si and Mg/Si ratios of non-carbonaceous chondrites reveal planetesimal formation during early condensation in the protoplanetary disk
- The quasi-universality of chondrule size as a constraint for chondrule formation models
- Transport of solids in protoplanetary disks: Comparing meteorites and astrophysical models
- Growth of calcium-aluminum-rich inclusions by coagulation and fragmentation in a turbulent protoplanetary disk: observations and modelisation
- On beryllium-10 production in gaseous protoplanetary disks and implications on the astrophysical setting of refractory inclusions
- A Unified Framework for Producing CAI Melting, Wark-Lovering Rims and Bowl-Shaped CAIs
- Transport of First Rocks of The Solar System by X-winds
- Depletion of Moderately Volatile Elements by Open-System loss in the Early Solar Nebula
- Infall and Disk Processes - the Message from Meteorites
- Nebular history of an ultrarefractory phase bearing CAI from a reduced type CV chondrite
- Detection of a 2.85 micrometer Feature on 5 Spinel-rich Asteroids from JWST
- Dynamic evolution of major element chemistry in protoplanetary disks and its implications for chondrite formation
- Physicochemical Controls on the Compositions of the Earth and Planets
- Dust changes in Sakurai's Object: new PAHs and SiC with coagulation of submicron-sized silicate dust into 10 micron-sized melilite grains
- Abundance, Sizes, and Major Element Compositions of Components in CR and LL Chondrites: Formation from Single Reservoirs