Predictions for Sparse Photometry of Jupiter-Family Comet Nuclei in the LSST Era
arXiv:2408.01315 · doi:10.3847/PSJ/ad55c6
Abstract
The Legacy Survey of Space and Time (LSST) at Vera C. Rubin Observatory will deliver high-quality, temporally-sparse observations of millions of Solar System objects on an unprecedented scale. Such datasets will likely enable the precise estimation of small body properties on a population-wide basis. In this work, we consider the possible applications of photometric data points from the LSST to the characterisation of Jupiter-family comet (JFC) nuclei. We simulate sparse-in-time lightcurve points with an LSST-like cadence for the orbit of a JFC between 2024-2033. Convex lightcurve inversion is used to assess whether the simulation input parameters can be accurately reproduced for a sample of nucleus rotation periods, pole orientations, activity onsets, shapes and sizes. We find that the rotation period and pole direction can be reliably constrained across all nucleus variants tested, and that the convex shape models, while limited in their ability to describe complex or bilobed nuclei, are effective for correcting sparse photometry for rotational modulation to improve estimates of nucleus phase functions. Based on this analysis, we anticipate that LSST photometry will significantly enhance our present understanding of the spin-state and phase function distributions of JFC nuclei.
Published in the Planetary Science Journal, 22 pages
References in corpus (10)
- Initial results from the New Horizons exploration of 2014 MU69, a small Kuiper Belt Object
- Rotation of Cometary Nuclei: New Lightcurves and an Update of the Ensemble Properties of Jupiter-Family Comets
- Reconstruction of asteroid spin states from Gaia DR3 photometry
- Asteroid models reconstructed from ATLAS photometry
- Testing the inversion of asteroids' Gaia photometry combined with ground-based observations
- Systematics and Consequences of Comet Nucleus Outgassing Torques
- Asteroid phase curves using sparse Gaia DR2 data and differential dense light curves
- Main-belt and Trojan Asteroid Phase Curves from the ATLAS Survey
- Characterizing the nucleus of comet 162P/Siding Spring using ground-based photometry
- Physical properties of near-Earth asteroid (2102) Tantalus from multi-wavelength observations