Thermal inertia of near-Earth asteroids and implications for the magnitude of the Yarkovsky effect |
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Authors: | Marco Delbo' Aldo dell'Oro Stefano Mottola |
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Affiliation: | a INAF - Oss. Astron. di Torino, via Osservatorio 20, 10025 Pino Torinese (TO), Italy b Laboratoire Cassiopée, Observatoire de la Côte d'Azur, B.P. 4229, 06034 Nice Cedex 4, France c DLR Institute of Planetary Research, Rutherfordstrasse 2, 12489 Berlin, Germany |
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Abstract: | Thermal inertia determines the temperature distribution over the surface of an asteroid and therefore governs the magnitude the Yarkovsky effect. The latter causes gradual drifting of the orbits of km-sized asteroids and plays an important role in the delivery of near-Earth asteroids (NEAs) from the main belt and in the dynamical spreading of asteroid families. At present, very little is known about the thermal inertia of asteroids in the km size range. Here we show that the average thermal inertia of a sample of NEAs in the km-size range is . Furthermore, we identify a trend of increasing thermal inertia with decreasing asteroid diameter, D. This indicates that the dependence of the drift rate of the orbital semimajor axis on the size of asteroids due to the Yarkovsky effect is a more complex function than the generally adopted D−1 dependence, and that the size distribution of objects injected by Yarkovsky-driven orbital mobility into the NEA source regions is less skewed to smaller sizes than generally assumed. We discuss how this fact may help to explain the small difference in the slope of the size distribution of km-sized NEAs and main-belt asteroids. |
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Keywords: | Asteroids Near-Earth objects Infrared observations Photometry Asteroids, dynamics |
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