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arXiv · 2608.03336

Long-lived thermal dynamo generation on differentiated, impact-disrupted planetesimals

Abstract

Meteorites containing both metal and silicates indicate that some planetesimals were partially differentiated and/or processes mixed planetesimal cores and mantles post-differentiation. Time-resolved paleomagnetic records in these meteorite groups can shed light on the differentiation and mixing histories of such bodies. Previous studies measured paleomagnetic remanences in two such meteorite groups, the IIE irons and the Main Group pallasites, and used thermal evolution and dynamo generation modelling to recover parent body properties. However, these studies assumed that these meteorites only recorded magnetic fields generated by core solidification; an assumption recently shown to be invalid. We use a refined planetesimal thermal evolution and dynamo generation model that considers thermal and compositional drivers of dynamo generation simultaneously to re-evaluate the parent body properties of the IIE irons and Main Group pallasites and constrain the formation mechanisms of these meteorites. We find that none of the remanences require core solidification, but later formed remanences are more likely to record dynamos driven by core solidification. The Main Group pallasites and IIE iron parent bodies likely had radii of $\sim$400km with core radius fractions of $\sim$0.5 and $\sim$0.7, respectively. Impacts shaped both parent bodies: the Main Group pallasites formed too far from the core-mantle-boundary to result from ferromagmatism and instead formed by impacts, and the IIE iron's core radius fraction suggests the parent body experienced mantle-stripping collisions. Overall, combining meteorite paleomagnetism with thermal evolution and dynamo generation models provides insights into the long-term evolution of differentiated planetesimals, their interior structures, and metal-silicate mixing on these bodies.

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Hannah R. Sanderson, James F. J. Bryson, Claire I. O. Nichols. 2026-08-04. Long-lived thermal dynamo generation on differentiated, impact-disrupted planetesimals. https://arxiv.org/abs/2608.03336

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