A semi-analytical thermal model for craters with application to the crater-induced YORP effect
arXiv:2405.18651 · doi:10.1051/0004-6361/202346970
Abstract
Context. The YORP effect is the thermal torque generated by radiation from the surface of an asteroid. The effect is sensitive to surface topology, including small-scale roughness, boulders, and craters. Aims: The aim of this paper is to develop a computationally efficient semi-analytical model for the crater-induced YORP (CYORP) effect that can be used to investigate the functional dependence of this effect. Methods. This study obtains the temperature field in a crater over a rotational period in the form of a Fourier series, accounting for the effects of self-sheltering, self-radiation, and self-scattering. Results. We obtain the temperature field of a crater, accounting for the thermal inertia, crater shape, and crater location. We then find that the CYORP effect is negligible when the depth-to-diameter ratio is smaller than 0.05. In this case, it is reasonable to assume a convex shape for YORP calculations. Varying the thermal conductivity yields a consistent value of approximately 0.01 for the spin component of the CYORP coefficient, while the obliquity component is inversely related to thermal inertia, declining from 0.004 in basalt to 0.001 in metal. For a z-axis symmetric shape, the CYORP spin component vanishes, while the obliquity component persists. Our model confirms that the total YORP torque is damped by a few tens of percent by uniformly distributed small-scale surface roughness. Furthermore, for the first time, we calculate the change in the YORP torque at each impact on the surface of an asteroid explicitly and compute the resulting stochastic spin evolution more precisely. Conclusions. The semi-analytical method that we developed, which benefits from fast computation, offers new perspectives for future investigations of the YORP modeling of real asteroids and for the complete rotational and orbital evolution of asteroids accounting for collisions.
13 pages, 11 figures. Published on A&A in February 2024
References in corpus (19)
- Dynamics of rotationally fissioned asteroids: Source of observed small asteroid systems
- Asteroids' physical models from combined dense and sparse photometry and scaling of the YORP effect by the observed obliquity distribution
- Tangential component of the YORP effect
- A 3-dimensional model of tangential YORP
- Post-main-sequence debris from rotation-induced YORP break-up of small bodies II: multiple fissions, internal strengths and binary production
- The thermal emission from boulders on (25143) Itokawa and general implications for the YORP effect
- Binary YORP and Evolution of Binary Asteroids
- Spin Axes and Shape Models of Asteroid Pairs: Fingerprints of YORP and a Path to the Density of Rubble Piles
- Systematic structure and sinks in the YORP effect
- Yarkovsky-Driven Spreading of the Eureka Family of Mars Trojans
- Detection of the YORP Effect on the contact-binary (68346) 2001 KZ66 from combined radar and optical observations
- Cascade disruptions in asteroid clusters
- Rotation acceleration of asteroids (10115) 1992 SK, (1685) Toro, and (1620) Geographos due to the YORP effect
- Analytic model for tangential YORP
- The crater-induced YORP effect
- Evolution of an asteroid family under YORP, Yarkovsky and collisions
- Limiting behavior of asteroid obliquity and spin using a semi-analytic thermal model of the YORP effect
- Analytic theory for the tangential YORP produced by the asteroid regolith
- Shape model and rotation acceleration of (1685) Toro and (85989) 1999 JD6 from optical observations
Cited by in corpus (6)
- The Yarkovsky effect on the long-term evolution of binary asteroids
- Spin states of X-complex asteroids in the inner main belt -- I. Investigating the Athor and Zita collisional families
- The binary Yarkovsky effect on the primary asteroid with applications to singly synchronous binary asteroids
- Confined tumbling state as the origin of the excess of slowly rotating asteroids
- Exploring rotational properties and the YORP effect in asteroid families
- Positive YORP effect induced by lateral heat conduction in a crater