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Particle Size Distributions in Chondritic Meteorites: Evidence for Pre-Planetesimal HistoriesMagnesium-rich silicate chondrules and calcium-, aluminum-rich refractory inclusions (CAIs) are fundamental components of primitive chondritic meteorites. It has been suggested that concentration of these early-formed particles by nebular sorting processes may lead to accretion of planetesimals, the planetary bodies that represent the building blocks of the terrestrial planets. In this case, the size distributions of the particles may constrain the accretion process. Here we present new particle size distribution data for Northwest Africa 5717, a primitive ordinary chondrite (ungrouped 3.05) and the well-known carbonaceous chondrite Allende (CV3). Instead of the relatively narrow size distributions obtained in previous studies (Ebel et al., 2016; Friedrich et al., 2015; Paque and Cuzzi, 1997, and references therein), we observed broad size distributions for all particle types in both meteorites. Detailed microscopic image analysis of Allende shows differences in the size distributions of chondrule subtypes, but collectively these subpopulations comprise a composite "chondrule" size distribution that is similar to the broad size distribution found for CAIs. Also, we find accretionary 'dust' rims on only a subset (approximately 15-20 percent) of the chondrules contained in Allende, which indicates that subpopulations of chondrules experienced distinct histories prior to planetary accretion. For the rimmed subset, we find positive correlation between rim thickness and chondrule size. The remarkable similarity between the size distributions of various subgroups of particles, both with and without fine grained rims, implies a common size sorting process. Chondrite classification schemes, astrophysical disk models that predict a narrow chondrule size population and/or a common localized formation event, and conventional particle analysis methods must all be critically reevaluated. We support the idea that distinct "lithologies" in NWA 5717 are nebular aggregates of chondrules. If greater than or equal to centimeter-sized aggregates of chondrules can form it will have implications for planet formation and suggests the sticking stage is where the preferential size physics is operating.
Document ID
20180002448
Acquisition Source
Johnson Space Center
Document Type
Preprint (Draft being sent to journal)
Authors
Simon, J. I.
(NASA Johnson Space Center Houston, TX, United States)
Cuzzi, J. N.
(NASA Ames Research Center Moffett Field, CA, United States)
McCain, K. A.
(Chicago Univ. Chicago, IL, United States)
Cato, M. J.
(University of Western Carolina Cullowhee, NC, United States)
Christoffersen, P. A.
(Saint Lawrence Univ. Canton, NY, United States)
Fisher, K. R.
(Cincinnati Univ. OH, United States)
Srinivasan, P.
(Rutgers Univ. Piscataway, NJ, United States)
Tait, A. W.
(Monash Univ. Clayton, Australia)
Olson, D. M.
(Bay Area Environmental Research Inst. Petaluma, CA, United States)
Scargle, J. D.
(NASA Ames Research Center Moffett Field, CA, United States)
Date Acquired
April 17, 2018
Publication Date
February 5, 2018
Publication Information
Publisher: Elsevier
Subject Category
Lunar And Planetary Science And Exploration
Report/Patent Number
JSC-E-DAA-TN52881
Distribution Limits
Public
Copyright
Public Use Permitted.
Keywords
chondritic meteorites
protoplanetary disks
CAIs
asteroids
planetesimals
chondrules
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