The long-term dynamics of dactyl's orbit

J. M. Petit, Daniel D. Durda, Richard Greenberg, T. A. Hurford, P. E. Geissler

Research output: Contribution to journalArticle

32 Scopus citations

Abstract

Asteroid Ida's satellite Dactyl was observed over 512hr by the Galileo spacecraft imaging system. The observed motion fits a family of orbits parameterized by the mass of Ida. We have tested the stability of these orbits by numerically integrating motion about a realistically shaped model for Ida. Those with pericenter distanceq≲ 65 km (corresponding to Ida's density ≳ 3.1 g cm-3) are unstable over time scales of a few days to a few months, placing a strong upper limit on Ida's density. Moreover, at the opposite extreme of density, orbits corresponding to densities less than 2.3 g cm-3are chaotic and become unstable after about 1000 years. For density between 2.3 and 2.5 g cm-3, Galileo family orbits are chaotic but there is no indication of instability over thousands of years. Dactyl likely formed at the same time as Ida, so its orbit must be stable over time scales much longer than we have been able to explore numerically. As a start toward understanding long-term stability, we have investigated the character of orbits commensurate with the rotation of Ida within the Galileo family. We found that the overlap of high-order resonances for low densities of Ida explains the chaotic behavior of orbits. The low-orderp:1 andp:2 resonances, corresponding to a high density for Ida, are distinct and stable and are all consistent with the longitudinal position of Dactyl at the epoch of the Galileo encounter. However, there is no evidence of preferential stability of resonant orbits against collison with Ida or escape over 6000 years. If a resonant orbit is actually occupied, it may have been selected by a longer-term stability or by dissipative processes.

Original languageEnglish (US)
Pages (from-to)177-197
Number of pages21
JournalIcarus
Volume130
Issue number1
DOIs
StatePublished - Nov 1 1997

ASJC Scopus subject areas

  • Astronomy and Astrophysics
  • Space and Planetary Science

Fingerprint Dive into the research topics of 'The long-term dynamics of dactyl's orbit'. Together they form a unique fingerprint.

  • Cite this

    Petit, J. M., Durda, D. D., Greenberg, R., Hurford, T. A., & Geissler, P. E. (1997). The long-term dynamics of dactyl's orbit. Icarus, 130(1), 177-197. https://doi.org/10.1006/icar.1997.5788