English

Beyond Point Masses. III. Detecting Haumea's Nonspherical Gravitational Field

Earth and Planetary Astrophysics 2024-03-20 v1

Abstract

The dwarf planet Haumea is one of the most compelling transneptunian objects (TNOs) to study, hosting two small, dynamically interacting satellites, a family of nearby spectrally unique objects, and a ring system. Haumea itself is extremely oblate due to its 3.9 hour rotation period. Understanding the orbits of Haumea's satellites, named Hi'iaka and Namaka, requires detailed modeling of both satellite-satellite gravitational interactions and satellite interactions with Haumea's nonspherical gravitational field (parameterized here as J2J_2). Understanding both of these effects allows for a detailed probe of the satellites' masses and Haumea's J2J_2 and spin pole. Measuring Haumea's J2J_2 provides information about Haumea's interior, possibly determining the extent of past differentation. In an effort to understand the Haumea system, we have performed detailed non-Keplerian orbit fitting of Haumea's satellites using a decade of new ultra-precise observations. Our fits detect Haumea's J2J_2 and spin pole at 2.5σ\gtrsim2.5\sigma confidence. Degeneracies present in the dynamics prevent us from precisely measuring Haumea's J2J_2 with the current data, but future observations should enable a precise measurement. Our dynamically determined spin pole shows excellent agreement with past results, illustrating the strength of non-Keplerian orbit fitting. We also explore the spin-orbit dynamics of Haumea and its satellites, showing that axial precession of Hi'iaka may be detectable over decadal timescales. Finally, we present an ephemeris of the Haumea system over the coming decade, enabling high-quality observations of Haumea and its satellites for years to come.

Keywords

Cite

@article{arxiv.2403.12782,
  title  = {Beyond Point Masses. III. Detecting Haumea's Nonspherical Gravitational Field},
  author = {Benjamin C. N. Proudfoot and Darin A. Ragozzine and William Giforos and Will M. Grundy and Mariah MacDonald and William J. Oldroyd},
  journal= {arXiv preprint arXiv:2403.12782},
  year   = {2024}
}

Comments

Accepted for publication in PSJ