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Chemical Heterogeneities Reveal Early Rapid Cooling of Apollo Troctolite 76535

Authors

William NelsonJulia HammerThomas SheaEric HellebrandG Taylor


Description

The evolution of the lunar interior is constrained by samples of the magnesian-suite of rocks returned by the Apollo missions. Reconciling the paradoxical geochemical features of this suite constitutes a feasibility test of lunar differentiation models. Here we present the results of a microanalytical examination of the archetypal specimen, troctolite 76535, previously thought to have cooled slowly from a large magma body. We report a degree of intra-crystalline compositional heterogeneity (phosphorus in olivine and sodium in plagioclase) fundamentally inconsistent with prolonged residence at high temperature. Diffusion chronometry shows these heterogeneities could not have survived magmatic temperatures for >20.1 My, i.e., far less than the previous estimated cooling duration of >100 My. Quantitative modeling provides a constraint on the thermal history of the lower lunar crust, and the textural evidence of dissolution and reprecipitation in olivine grains supports reactive melt infiltration as the mechanism by which the magnesian suite formed.


Sample

76535

How To Cite

Nelson, W., Hammer, J., Shea, T., Hellebrand, E., Taylor, G., 2021. Chemical Heterogeneities Reveal Early Rapid Cooling of Apollo Troctolite 76535, Version 1.0. Astromaterials Data Archive. https://doi.org/10.26022/IEDA/112146 Accessed 2026-09-29.

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Date Created

October 4, 2021

Size

1.68 MB

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Funding Sources

NASA NNX16AO77G

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The Bubble Nebula (NGC 7635) observed by the NASA/ESA Hubble Space Telescope.
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Funded by NASA.
Hosted at the LDEO of Columbia University.

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