Grain Size segregation in debris discs
arXiv:1310.1584 · doi:10.1051/0004-6361/201322052
Abstract
In most debris discs, dust grain dynamics is strongly affected by stellar radiation pressure. As this mechanism is size-dependent, we expect dust grains to be spatially segregated according to their sizes. However, because of the complex interplay between radiation pressure, collisions and dynamical perturbations, this spatial segregation of the particle size distribution (PSD) has proven difficult to investigate with numerical models. We propose to explore this issue using a new-generation code that can handle some of the coupling between dynamical and collisional effects. We investigate how PSDs behave in both unperturbed discs "at rest" and in discs pertubed by planetary objects. We use the DyCoSS code of Thebault(2012) to investigate the coupled effect of collisions, radiation pressure and dynamical perturbations in systems having reached a steady state. We consider 2 setups: a narrow ring perturbed by an exterior planet, and an extended disc into which a planet is embedded. For both setups we consider an additional unperturbed case with no planet. We also investigate how possible spatial size segregation affect disc images at different wavelengths. We find that PSDs are always strongly spatially segregated. The only case for which they follow a standard dn/dr = C.r**(-3.5) law is for an unperturbed narrow ring, but only within the parent body ring itself. For all other configurations, the PSD can strongly depart from such power laws and have strong spatial gradients. As an example, the geometrical cross section of the disc is rarely dominated by the smallest grains on bound orbits, as it is expected to be in standard PSDs in s**q with q<-3. Although the exact profiles and spatial variations of PSDs are a complex function of the considered set-up, we are however able to derive some robust results that should be useful for image-or-SED-fitting models of observed discs.
Accepted in A&A // Figure quality has been downgraded. A high-res version of the paper can be found at http://lesia.obspm.fr/perso/philippe-thebault/sizepap_rev.pdf /V2: typos corrected
References in corpus (9)
- DUst Around NEarby Stars. The survey observational results
- HST/ACS Multiband Coronagraphic Imaging of the Debris Disk around Beta Pictoris
- Long-Term Collisional Evolution of Debris Disks
- Collisional processes and size distribution in spatially extended debris discs
- STIS Coronagraphic Imaging of Fomalhaut: Main Belt Structure and the Orbit of Fomalhaut b
- Outer edges of debris discs: how sharp is sharp?
- Collisional dust avalanches in debris discs
- LIDT-DD: A new self-consistent debris disc model including radiation pressure and coupling collisional and dynamical evolution
- On the observability of resonant structures in planetesimal disks due to planetary migration
Cited by in corpus (18)
- Revealing Asymmetries in the HD 181327 Debris Disk: A Recent Massive Collision or ISM Warping
- Stirring in massive, young debris discs from spatially resolved Herschel images
- Debris Distribution in HD 95086 - A Young Analog of HR 8799
- ALMA Detection of Extended Millimeter Halos in the HD 32297 and HD 61005 Debris Disks
- Signatures of massive collisions in debris discs
- Collisions and drag in debris discs with eccentric parent belts
- The Gemini Planet Imager view of the HD 32297 debris disk
- Hot exozodiacal dust: an exocometary origin?
- Dynamical models to explain observations with SPHERE in planetary systems with double debris belts
- MAMBO image of the debris disk around epsilon Eridani : robustness of the azimuthal structure
- Impact of planetesimal eccentricities and material strength on the appearance of eccentric debris disks
- Morphology of the gas-rich debris disk around HD 121617 with SPHERE observations in polarized light
- Irradiation Instability at the Inner Edges of Accretion Disks
- A re-investigation of debris disc halos
- ExoVista: A Suite of Planetary System Models for Exoplanet Studies
- The ALMA survey to Resolve exoKuiper belt Substructures (ARKS) V: Comparison between scattered light and thermal emission
- Characterization of debris disks observed with SPHERE
- Hiding in the Shadows II: Collisional Dust as Exoplanet Markers