The Sesquinary Catastrophe on Deimos can reconcile its excited past with its dynamically cool present
arXiv:2512.15976 · doi:10.3847/PSJ/ae2fba
Abstract
The origins of the Martian moons Phobos and Deimos are highly debated, and hypotheses include formation from an impact-generated circum-Martian disk or from capture of asteroids. With the impact scenario, Deimos (or its precursors) were formed or were pushed out beyond the synchronous orbit of Mars. Moons interior to the synchronous orbit, including Phobos (or its precursors), would tidally evolve and resonances between these moons could potentially excite Deimos' orbit. This contradicts Deimos' present-day orbit of low eccentricity () and moderate inclination ( to the Laplace plane). Tidal dissipation within Deimos is too inefficient for eccentricity damping, and without alternative mechanisms, Deimos' present-day orbit places strong constraints on the evolution of any inner moons. We propose that a runaway collisional cascade called the "sesquinary catastrophe'' acts as a natural barrier that prevents Deimos from having a more excited orbit. Using N-body simulations with collisional fragmentation, we show that if Deimos was more excited, it would undergo a sesquinary catastrophe and break apart into a Roche-exterior debris disk. Using a measure of sesquinary orbital excitation called , our simulations and previous works suggest that breakup occurs for on timescales of years. If Deimos was destroyed in a sesquinary catastrophe and re-accreted from a (likely collisionally) damped debris disk, it should be a porous sand-pile moon, consistent with its smooth surface. The sesquinary catastrophe can be applied to other Deimos-like planetary moons at .
12 pages, 6 figures. Accepted for Planetary Science Journal (PSJ)
References in corpus (10)
- Array Programming with NumPy
- Formation of Phobos and Deimos via a Giant Impact
- On the Impact Origin of Phobos and Deimos I: Thermodynamic and Physical Aspects
- Compositions and origins of outer planet systems: Insights from the Roche critical density
- On the Impact Origin of Phobos and Deimos II: True Polar Wander and Disk Evolution
- Configuration of the Martian dust rings: Shapes, densities and size-distributions from direct integrations of particle trajectories
- Escape and accretion by cratering impacts: Formulation of scaling relations for high-speed ejecta
- Evidence for a Past Martian Ring from the Orbital Inclination of Deimos
- Origin of Mars's moons by disruptive partial capture of an asteroid
- Giga-Year Dynamical Evolution of Particles Around Mars