The impact history and prolonged magmatism of the angrite parent body

Author:

Rider‐Stokes B. G.1ORCID,Anand M.12,White L. F.1,Darling J. R.3,Tartèse R.4ORCID,Whitehouse M. J.5,Franchi I.1ORCID,Greenwood R. C.1,Degli‐Alessandrini G.1

Affiliation:

1. School of Physical Sciences The Open University Milton Keynes UK

2. Department of Mineralogy The Natural History Museum London UK

3. School of the Environment, Geography & Geosciences University of Portsmouth Portsmouth UK

4. Department of Earth and Environmental Sciences The University of Manchester Manchester UK

5. Department of Geosciences Swedish Museum of Natural History Stockholm Sweden

Abstract

AbstractAs some of the oldest differentiated materials in our solar system, angrite meteorites can provide unique insights into the earliest stages of planetary evolution. However, the timing of planetary mixing, as evidenced by oxygen isotope variations in the quenched angrites, and the extent of magmatism on the angrite parent body (APB) remain poorly understood. Here, we report on microstructurally guided in situ geochemical and Pb–Pb isotopic measurements on angrites aimed at better understanding of the timing and nature of magmatic processes, as well as impact events, on the APB. The quenched angrite Northwest Africa (NWA) 12320 yielded a Pb–Pb date of 4571.2 ± 9.4 Ma, which we interpret as corresponding to the timing of planetary mixing. The only known shocked quenched angrite, NWA 7203, also yielded an ancient Pb–Pb date of 4562.9 ± 9.3 Ma, which is identical to the Pb–Pb date of 4563.6 ± 7.9 Ma obtained for the texturally intermediate angrite NWA 10463. Pb–Pb analyses in phosphates in the dunitic angrite NWA 8535 yielded a much younger date of 4514 ± 30 Ma, representing the youngest Pb–Pb date ever recorded for an angrite. Based on the evidence from the lack of shock deformation, olivine major and trace element compositions, and no apparent contamination in the oxygen isotope composition of NWA 8535, our findings are consistent with prolonged magmatism on the APB. This finding is consistent with a large size for the APB.

Funder

Science and Technology Facilities Council

Publisher

Wiley

Subject

Space and Planetary Science,Geophysics

Reference64 articles.

1. Agee C. B. Miley H. M. Ziegler K. andSpilde M. N.2015.Northwest Africa 8535: Unique Dunitic Angrite. 46th Lunar and Planetary Science Conference abstract #2681.

2. U–Pb ages of angrites

3. Metamorphic angrite Northwest Africa 3164/5167 compared to magmatic angrites

4. Geochemistry of CI chondrites: Major and trace elements, and Cu and Zn Isotopes

5. Bell P. M. Mao H. K. Roedder E. andWeiblen P. W.1975.The Problem of the Origin of Symplectites in Olivine‐Bearing Lunar Rocks. 6th Lunar Science Conference pp. 231–48.

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