Thermal Properties of 1847 WISE-observed Asteroids
Denise Hung, Josef Hanu\v{s}, Joseph R. Masiero, David J. Tholen

TL;DR
This study derives thermophysical properties for 1,847 asteroids using WISE infrared data, revealing broad trends in thermal inertia related to asteroid size and shape, and highlighting the potential for future high-precision modeling.
Contribution
It provides a large-scale thermophysical analysis of asteroids combining WISE data with shape models, improving understanding of thermal inertia relations and introducing new shape models from lightcurve inversion.
Findings
Thermal inertia shows a negative correlation with asteroid diameter.
Broad trends between thermal inertia and physical parameters are identified.
Future surveys will enable more precise thermophysical modeling.
Abstract
We present new thermophysical model (TPM) fits of 1,847 asteroids, deriving thermal inertia, diameter, and Bond and visible geometric albedo. We use thermal flux measurements obtained by the Wide-field Infrared Survey Explorer (WISE; Wright et al. 2010; Mainzer et al. 2011) during its fully cryogenic phase, when both the 12m (W3) and 22m (W4) bands were available. We take shape models and spin information from the Database of Asteroid Models from Inversion Techniques (DAMIT; \v{D}urech et al. 2010) and derive new shape models through lightcurve inversion and combining WISE photometry with existing DAMIT lightcurves. When we limit our sample to the asteroids with the most reliable shape models and thermal flux measurements, we find broadly consistent thermal inertia relations with recent studies. We apply fits to the diameters (km) and thermal inertia (J m…
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Taxonomy
TopicsAstro and Planetary Science · High-pressure geophysics and materials · Stellar, planetary, and galactic studies
