Solution to the debris disc mass problem: planetesimals are born small?
arXiv:2008.07406 · doi:10.1093/mnras/staa2385
Abstract
Debris belts on the periphery of planetary systems, encompassing the region occupied by planetary orbits, are massive analogues of the Solar system's Kuiper belt. They are detected by thermal emission of dust released in collisions amongst directly unobservable larger bodies that carry most of the debris disc mass. We estimate the total mass of the discs by extrapolating up the mass of emitting dust with the help of collisional cascade models. The resulting mass of bright debris discs appears to be unrealistically large, exceeding the mass of solids available in the systems at the preceding protoplanetary stage. We discuss this "mass problem" in detail and investigate possible solutions to it. These include uncertainties in the dust opacity and planetesimal strength, variation of the bulk density with size, steepening of the size distribution by damping processes, the role of the unknown "collisional age" of the discs, and dust production in recent giant impacts. While we cannot rule out the possibility that a combination of these might help, we argue that the easiest solution would be to assume that planetesimals in systems with bright debris discs were "born small", with sizes in the kilometre range, especially at large distances from the stars. This conclusion would necessitate revisions to the existing planetesimal formation models, and may have a range of implications for planet formation. We also discuss potential tests to constrain the largest planetesimal sizes and debris disc masses.
This is a pre-copyedited, author-produced PDF of an article accepted for publication in MNRAS following peer review; 20 pages, 11 figures. The version of record is available online at https://doi.org/10.1093/mnras/staa2385
References in corpus (37)
- Protoplanetary Disk Structures in Ophiuchus
- A Steeper than Linear Disk Mass-Stellar Mass Scaling Relation
- Towards planetesimals: dense chondrule clumps in the protoplanetary nebula
- Transience of hot dust around sun-like stars
- Structure and evolution of pre-main sequence circumstellar disks
- Variations on Debris Disks: Icy Planet Formation at 30-150 AU for 1-3 Solar Mass Main Sequence Stars
- Molecular Gas Clumps from the Destruction of Icy Bodies in the Pictoris Debris Disk
- "TNOs are Cool": A survey of the trans-Neptunian region X. Analysis of classical Kuiper belt objects from Herschel and Spitzer observations
- Nearby debris disk systems with high fractional luminosity reconsidered
- One Solution to the Mass Budget Problem for Planet Formation: Optically Thick Disks with Dust Scattering
- Initial mass function of planetesimals formed by the streaming instability
- Evidence for the formation of comet 67P/Churyumov-Gerasimenko through gravitational collapse of a bound clump of pebbles
- Long-Term Collisional Evolution of Debris Disks
- Steady-State Size Distributions for Collisional Populations: Analytical Solution with Size-Dependent Strength
- Collisional processes and size distribution in spatially extended debris discs
- Detection of exocometary CO within the 440 Myr-old Fomalhaut belt: a similar CO+CO ice abundance in exocomets and Solar System comets
- Debris from giant impacts between planetary embryos at large orbital radii
- SONS: The JCMT legacy survey of debris discs in the submillimetre
- Turbulence sets the length scale for planetesimal formation: Local 2D simulations of streaming instability and planetesimal formation
- The History of the Solar System's Debris Disc: Observable Properties of the Kuiper Belt
- Outer edges of debris discs: how sharp is sharp?
- The Mass Budget of Planet Forming Discs: Isolating the Epoch of Planetesimal Formation
- "TNOs are Cool": A survey of the trans-Neptunian region VI. Herschel/PACS observations and thermal modeling of 19 classical Kuiper belt objects
- Kuiper Belt-Like Hot and Cold Populations of Planetesimal Inclinations in the Pictoris Belt Revealed by ALMA
- Dynamical evolution of an eccentric planet and a less massive debris disc
- Stirring in massive, young debris discs from spatially resolved Herschel images
- Binary Survival in the Outer Solar System
- A gap in HD 92945's broad planetesimal disc revealed by ALMA
- The Mass of Stirring Bodies in the AU Mic Debris Disk Inferred from Resolved Vertical Structure
- Population synthesis of exocometary gas around A stars
- ALMA Detection of Extended Millimeter Halos in the HD 32297 and HD 61005 Debris Disks
- Debris Disc Constraints on Planetesimal Formation
- Porous dust grains in debris disks
- Debris disc formation induced by planetary growth
- Collisional modelling of the debris disc around HIP 17439
- Predicting the frequencies of diverse exo-planetary systems
- Absorption of crystalline water ice in the far infrared at different temperatures