English

Science with an ngVLA: Resolved Substructures in Protoplanetary Disks

Earth and Planetary Astrophysics 2018-10-17 v1

Abstract

Terrestrial planets and the cores of giant planets are thought to be built by the collisional agglomeration of solids spanning over 20 orders of magnitude in size within a few million years. However, there is tension between this basic picture of planet formation and standard theoretical assumptions associated with the migration of "pebbles" (\simmm/cm-sized particles) in gas-rich disks and the presumably much longer timescales necessary to assemble (\simkm-scale) "planetesimals". To confront these potential theoretical discrepancies with observational constraints, the ideal tracer of the solids concentrated in protoplanetary disk substructures is the 30-100 GHz continuum, which strikes the best balance in sensitivity (emission still bright), optical depth (low enough to reliably estimate densities), and angular resolution (high enough to resolve fine-scale features at disk radii as small as 1 au). With its combination of sensitivity, frequency coverage, and angular resolution, the next-generation VLA will be the only facility that has the capabilities to open up this new window into the physics of planetesimal formation.

Keywords

Cite

@article{arxiv.1810.06598,
  title  = {Science with an ngVLA: Resolved Substructures in Protoplanetary Disks},
  author = {Sean M. Andrews and David J. Wilner and Enrique Macias and Carlos Carrasco-Gonzalez and Andrea Isella},
  journal= {arXiv preprint arXiv:1810.06598},
  year   = {2018}
}

Comments

To be published in the ASP Monograph Series, Science with a Next-Generation VLA, ed. E. J. Murphy (ASP, San Francisco, CA)

R2 v1 2026-06-23T04:40:30.353Z