A thermophysical analysis of the (1862) Apollo Yarkovsky and YORP effects
arXiv:1305.3109 · doi:10.1051/0004-6361/201321659
Abstract
Near-Earth asteroid (1862) Apollo has strong detections of both orbital semimajor axis drift and rotational acceleration. We produce a unified model that can accurately match both observed effects using a single set of thermophysical properties derived from ground-based observations, and we determine Apollo's long term evolution. We use light-curve shape inversion techniques and the ATPM on published light-curve, thermal-infrared, and radar observations to constrain Apollo's thermophysical properties. The derived properties are used to make detailed predictions of Apollo's Yarkovsky and YORP effects, which are then compared with published measurements of orbital drift and rotational acceleration. The ATPM explicitly incorporates 1D heat conduction, shadowing, multiple scattering of sunlight, global self-heating, and rough surface thermal-infrared beaming in the model predictions. We find that ATPM can accurately reproduce the light-curve, thermal-infrared, and radar observations of Apollo, and simultaneously match the observed orbital drift and rotational acceleration using: a shape model with axis ratios of 1.94:1.65:1.00, an effective diameter of 1.55 +/- 0.07 km, a geometric albedo of 0.20 +/- 0.02, a thermal inertia of 140 +140/-100 J m-2 K-1 s-1/2, a highly rough surface, and a bulk density of 2850 +480/-680 kg m-3. Using these properties we predict that Apollo's obliquity is increasing towards the 180 degree YORP asymptotic state at a rate of 1.5 +0.3/-0.5 degrees per 10^5 yr. The derived thermal inertia suggests that Apollo has loose regolith material resting on its surface, which is consistent with Apollo undergoing a recent resurfacing event based on its observed Q-type spectrum. The inferred bulk density is consistent with those determined for other S-type asteroids, and suggests that Apollo has a fractured interior.
15 pages, 7 figures, 4 tables. Accepted by A&A
References in corpus (7)
- Thermal inertia of near-Earth asteroids and implications for the magnitude of the Yarkovsky effect
- Formation of asteroid pairs by rotational fission
- Near Earth Asteroids with measurable Yarkovsky effect
- The Influence of Global Self-Heating on the Yarkovsky and YORP Effects
- Effect of Density Inhomogeneity on YORP: The case of Itokawa
- Analysis of the rotation period of asteroids (1865) Cerberus, (2100) Ra-Shalom, and (3103) Eger - search for the YORP effect
- The Strength and Detectability of the YORP Effect in Near-Earth Asteroids: A Statistical Approach
Cited by in corpus (14)
- Orbit and Bulk Density of the OSIRIS-REx Target Asteroid (101955) Bennu
- Asteroid Taxonomy from Cluster Analysis of Spectrometry and Albedo
- Near-Earth asteroid (3200) Phaethon. Characterization of its orbit, spin state, and thermophysical parameters
- The orbital evolution of asteroids, pebbles and planets from giant branch stellar radiation and winds
- Thermophysical modeling of main-belt asteroids from WISE thermal data
- Constraining the Physical Properties of Near-Earth Object 2009 BD
- Physical characterisation of near-Earth asteroid (1620) Geographos. Reconciling radar and thermal-infrared observations
- Detection of the YORP Effect on the contact-binary (68346) 2001 KZ66 from combined radar and optical observations
- Q-type asteroids: Possibility of non-fresh weathered surfaces
- Thermophysical Investigation of Asteroid Surfaces II: Factors Influencing Grain Size
- The Surface Roughness of (433) Eros as Measured by Thermal-Infrared Beaming
- Thermophysical Modeling of Asteroid Surfaces using Ellipsoid Shape Models
- Deep operator neural network applied to efficient computation of asteroid surface temperature and the Yarkovsky effect
- Physical properties of near-Earth asteroid (2102) Tantalus from multi-wavelength observations