Accretion of tidally disrupted asteroids onto white dwarfs: direct accretion versus disk processing
arXiv:2106.00441 · doi:10.1093/mnras/stab2949
Abstract
Atmospheric heavy elements have been observed in more than a quarter of white dwarfs (WDs) at different cooling ages, indicating ongoing accretion of asteroidal material, whilst only a few per cent of the WDs possess a dust disk, and all these WDs are accreting metals. Here, assuming that a rubble-pile asteroid is scattered inside a WD's Roche lobe by a planet, we study its tidal disruption and the long-term evolution of the resulting fragments. We find that after a few pericentric passages, the asteroid is shredded into its constituent particles, forming a flat, thin ring. On a timescale of Myr, tens of per cent of the particles are scattered onto the WD, and are therefore directly accreted without first passing through a circularised close-in disk. Fragment mutual collisions are most effective for coplanar fragments, and are thus only important in yr before the orbital coplanarity is broken by the planet. We show that for a rubble pile asteroid with a size frequency distribution of the component particles following that of the near earth objects, it has to be roughly at least 10 km in radius such that enough fragments are generated and of its mass is lost to mutual collisions. At relative velocities of tens of km/s, such collisions grind down the tidal fragments into smaller and smaller dust grains. The WD radiation forces may shrink those grains' orbits, forming a dust disk. Tidal disruption of a monolithic asteroid creates large km-size fragments, and only parent bodies km are able to generate enough fragments for mutual collisions to be significant. Hence, those large asteroids experience a disk phase before being accreted.
in press in MNRAS, simulation animation available at https://lidaohai.github.io/research/td
References in corpus (26)
- The frequency of planetary debris around young white dwarfs
- Foretellings of Ragnarök: World-engulfing Asymptotic Giants and the Inheritance of White Dwarfs
- Formation of planetary debris discs around white dwarfs I: Tidal disruption of an extremely eccentric asteroid
- A planetesimal orbiting within the debris disc around a white dwarf star
- The unbiased frequency of planetary signatures around single and binary white dwarfs using and
- Planetary engulfment as a trigger for white dwarf pollution
- Numerical Simulations of Collisional Cascades at the Roche Limits of White Dwarf Stars
- Tidal disruption of planetary bodies by white dwarfs I: A hybrid SPH-analytical approach
- The orbital evolution of asteroids, pebbles and planets from giant branch stellar radiation and winds
- The Occurrence of Wide-Orbit Planets in Binary Star Systems
- Tidal disruption of planetary bodies by white dwarfs II: Debris disc structure and ejected interstellar asteroids
- Recurring Planetary Debris Transits and Circumstellar Gas around White Dwarf ZTF J03281219
- Thawing the frozen-in approximation: implications for self-gravity in deeply plunging tidal disruption events
- Tidal distortion and disruption of rubble-pile bodies revisited -- Soft-sphere discrete element analyses
- The dust never settles: collisional production of gas and dust in evolved planetary systems
- Properties and evolution of NEO families created by tidal disruption at Earth
- Circularization of tidal debris around white dwarfs: implications for gas production and dust variability
- Do instabilities in high-multiplicity systems explain the existence of close-in white dwarf planets?
- Understanding the origin of white dwarf atmospheric pollution by dynamical simulations based on detected three-planet systems
- Dynamical evolution of two-planet systems and its connection with white dwarf atmospheric pollution
- How Sublimation Delays the Onset of Dusty Debris Disk Formation Around White Dwarf Stars
- On the role of resonances in polluting white dwarfs by asteroids
- Formation of eccentric gas discs from sublimating or partially disrupted asteroids orbiting white dwarfs
- The critical binary star separation for a planetary system origin of white dwarf pollution
- The entry geometry and velocity of planetary debris into the Roche sphere of a white dwarf
- Rapid destruction of planetary debris around white dwarfs through aeolian erosion
Cited by in corpus (21)
- Relentless and Complex Transits from a Planetesimal Debris Disk
- A road-map to white dwarf pollution: Tidal disruption, eccentric grind-down, and dust accretion
- Asynchronous accretion can mimic diverse white dwarf pollutants I: core and mantle fragments
- The Geometry of the G29-38 White Dwarf Dust Disk from Radiative Transfer Modeling
- Orbit decay of 2-100 au planetary remnants around white dwarfs with no gravitational assistance from planets
- Metal pollution of the solar white dwarf by solar system small bodies
- Asynchronous accretion can mimic diverse white dwarf pollutants II: water content
- The smallest planetary drivers of white dwarf pollution
- Astrometric Gravitational-Wave Detection via Stellar Interferometry
- Rapid formation of binary asteroid systems post rotational failure: a recipe for making atypically shaped satellites
- Disentangling the parameter space: The role of planet multiplicity in triggering dynamical instabilities on planetary systems around white dwarfs
- High-resolution resonant portraits of a single-planet white dwarf system
- White dwarf systems: exoplanets and debris disks
- Planetesimals drifting through dusty and gaseous white dwarf debris discs: Types I, II and III-like migration
- Partial disruption of a planet around a white dwarf: the effect of perturbation from the remnant planet on the accretion
- Gaia white dwarfs with infrared excess I. The 100 pc catalogue
- The formation of transiting circumplanetary debris discs from the disruption of satellite systems during planet-planet scattering
- Disruption of exo-asteroids around white dwarfs and the release of dust particles in debris rings in co-orbital motion
- Binary asteroid dissociation and accretion around white dwarfs
- Three-body Mean Motion Resonance Chains as a Delivery Mechanism for White Dwarf Pollution
- Detecting water ice and vapor disks originating from icy planetary bodies around white dwarfs with future PRIMA observations