Near-infrared emission from sublimating dust in collisionally active debris disks
arXiv:1404.3271 · doi:10.1051/0004-6361/201322090
Abstract
Hot exozodiacal dust is thought to be responsible for excess near-infrared (NIR) emission emanating from the innermost parts of some debris disks. The origin of this dust, however, is still a matter of debate. We test whether hot exozodiacal dust can be supplied from an exterior parent belt by Poynting-Robertson (P-R) drag, paying special attention to the pile-up of dust that occurs due to the interplay of P-R drag and dust sublimation. Specifically, we investigate whether pile-ups still occur when collisions are taken into account, and if they can explain the observed NIR excess. We compute the steady-state distribution of dust in the inner disk by solving the continuity equation. First, we derive an analytical solution under a number of simplifying assumptions. Second, we develop a numerical debris disk model that for the first time treats the complex interaction of collisions, P-R drag, and sublimation in a self-consistent way. From the resulting dust distributions we generate thermal emission spectra and compare these to observed excess NIR fluxes. We confirm that P-R drag always supplies a small amount of dust to the sublimation zone, but find that a fully consistent treatment yields a maximum amount of dust that is about 7 times lower than that given by analytical estimates. The NIR excess due this material is much smaller (<10^-3 for A-type stars with parent belts at >1 AU) than the values derived from interferometric observations (~10^-2). Pile-up of dust still occurs when collisions are considered, but its effect on the NIR flux is insignificant. Finally, the cross-section in the innermost regions is clearly dominated by barely bound grains.
18 pages, 10 figures, A&A accepted
References in corpus (10)
- Transience of hot dust around sun-like stars
- Debris disks around Sun-like stars
- Spitzer IRS Spectroscopy of IRAS-Discovered Debris Disks
- Formation and Evolution of Planetary Systems (FEPS): Properties of Debris Dust around Solar-type Stars
- Collisional processes and size distribution in spatially extended debris discs
- Circumstellar material in the Vega inner system revealed by CHARA/FLUOR
- Herschel images of Fomalhaut. An extrasolar Kuiper Belt at the height of its dynamical activity
- Collisional dust avalanches in debris discs
- A near-infrared interferometric survey of debris disc stars. II. CHARA/FLUOR observations of six early-type dwarfs
- Hot circumstellar material resolved around beta Pic with VLTI/PIONIER
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- First L band detection of hot exozodiacal dust with VLTI/MATISSE
- A PR drag origin for the Fomalhaut disk's pervasive inner dust: constraints on collisional strengths, icy composition, and embedded planets
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- VLTI/MATISSE observations of the hot dust around Pictoris: Observing faint objects with MATISSE