A search for H-chondritic chromite grains in sediments that formed immediately after the breakup of the L-chondrite parent body 470Ma ago

Autor: Fredrik Terfelt, Birger Schmitz, Noriko T. Kita, S. S. Rout, Philipp R. Heck, Anders Cronholm, Travis J. Tenner, K. L. Villalon
Rok vydání: 2016
Předmět:
Zdroj: Geochimica et Cosmochimica Acta. 177:120-129
ISSN: 0016-7037
DOI: 10.1016/j.gca.2015.11.042
Popis: A large abundance of L-chondritic material, mainly in the form of fossil meteorites and chromite grains from micrometeorites, has been found in mid-Ordovician 470 Ma old sediments globally. The material has been determined to be ejecta from the L chondrite parent body breakup event, a major collision in the asteroid belt 470 Ma ago. In this study we search the same sediments for H-chondritic chromite grains in order to improve our understanding of the extraterrestrial flux to Earth after the asteroid breakup event. We have used SIMS in conjunction with quantitative SEM/EDS to determine the three oxygen isotopic and elemental compositions, respectively, of a total of 120 randomly selected, sediment-dispersed extraterrestrial chromite grains mainly representing micrometeorites from 470 Ma old post-breakup limestone from the Thorsberg quarry in Sweden and the Lynna River site in Russia. We show that 99% or more of the grains are L-chondritic, whereas the H-chondritic fraction is 1% or less. The L-/H-chondrite ratio after the breakup thus was >99 compared to 1.1 in today’s meteoritic flux. This represents independent evidence, in agreement with previous estimates based on sediment-dispersed extraterrestrial chromite grain abundances and sedimentation rates, of a two orders of magnitude higher post-breakup flux of L-chondritic material in the micrometeorite fraction. Finally, we confirm the usefulness of three oxygen isotopic SIMS analyses of individual extraterrestrial chromite grains for classification of equilibrated ordinary chondrites. The H- and L-chondritic chromites differ both in their three oxygen isotopic and elemental compositions, but there is some overlap between the groups. In chromite, TiO 2 is the oxide most resistant to diagenesis, and the combined application of TiO 2 and oxygen three-isotope analysis can resolve uncertainties arising from the compositional overlaps.
Databáze: OpenAIRE