Systematics and Consequences of Comet Nucleus Outgassing Torques
Abstract
Anisotropic outgassing from comets exerts a torque sufficient to rapidly change the angular momentum of the nucleus, potentially leading to rotational instability. Here, we use empirical measures of spin changes in a sample of comets to characterize the torques and to compare them with expectations from a simple model. Both the data and the model show that the characteristic spin-up timescale, , is a strong function of nucleus radius, . Empirically, we find that the timescale for comets (most with perihelion 1 to 2 AU and eccentricity 0.5) varies as , where is expressed in kilometers and is in years. The fraction of the nucleus surface that is active varies as . We find that the median value of the dimensionless moment arm of the torque is = 0.007 (i.e. 0.7\% of the escaping momentum torques the nucleus), with weak (3) evidence for a size dependence . Sub-kilometer nuclei have spin-up timescales comparable to their orbital periods, confirming that outgassing torques are quickly capable of driving small nuclei towards rotational disruption. Torque-induced rotational instability likely accounts for the paucity of sub-kilometer short-period cometary nuclei, and for the pre-perihelion destruction of sungrazing comets. Torques from sustained outgassing on small active asteroids can rival YORP torques, even for very small (1 g s) mass loss rates. Finally, we highlight the important role played by observational biases in the measured distributions of , and .
Keywords
Cite
@article{arxiv.2103.10577,
title = {Systematics and Consequences of Comet Nucleus Outgassing Torques},
author = {David Jewitt},
journal= {arXiv preprint arXiv:2103.10577},
year = {2021}
}
Comments
36 Pages, 6 Figures, AJ in press