Mixing and diffusion in protoplanetary disc chemistry
arXiv:2209.12233 · doi:10.1051/0004-6361/202244554
Abstract
We develop a simple iterative scheme to include vertical turbulent mixing and diffusion in ProDiMo thermo-chemical models for protoplanetary discs. The models are carefully checked for convergence toward the time-independent solution of the reaction-diffusion equations, as e.g. used in exoplanet atmosphere models. A series of five T Tauri disc models is presented where we vary the mixing parameter α mix from 0 to 0.01 and take into account (a) the radiative transfer feedback of the opacities of icy grains that are mixed upward and (b) the feedback of the changing molecular abundances on the gas temperature structure caused by exothermic reactions and increased line heating/cooling. We see considerable changes of the molecular and ice concentrations in the disc. The most abundant species (H2, CH4, CO, the neutral atoms in higher layers, and the ices in the midplane) are transported both up and down, and at the locations where these abundant chemicals finally decompose, for example by photo processes, the release of reaction products has important consequences for all other molecules. This generally creates a more active chemistry, with a richer mixture of ionised, atomic, molecular and ice species and new chemical pathways that are not relevant in the unmixed case. We discuss the impact on three spectral observations caused by mixing and find that (i) icy grains can reach the observable disc surface where they cause ice absorption and emission features at IR to far-IR wavelengths, (ii) mixing increases the concentrations of certain neutral molecules observable by mid-IR spectroscopy, in particular OH, HCN and C2H2, and (iii) mixing can change the optical appearance of CO in ALMA line images and channel maps, where strong mixing would cause the CO molecules to populate the distant midplane.
19 pages, 13 Figures, accepted by A&A
References in corpus (10)
- Particle Stirring in Turbulent Gas Disks: Including Orbital Oscillations
- A Precise Water Abundance Measurement for the Hot Jupiter WASP-43b
- Direct mapping of the temperature and velocity gradients in discs. Imaging the vertical CO snow line around IM Lupi
- The Coupled Physical Structure of Gas and Dust in the IM Lup Protoplanetary Disk
- Gas-phase CO in protoplanetary disks: a challenge for turbulent mixing
- Constraints from Dust Mass and Mass Accretion Rate Measurements on Angular Momentum Transport in Protoplanetary Disks
- Tracing water vapor and ice during dust growth
- Consistent dust and gas models for protoplanetary disks: II. Chemical networks and rates
- MOVES IV. Modelling the influence of stellar XUV-flux, cosmic rays, and stellar energetic particles on the atmospheric composition of the hot Jupiter HD 189733b
- Ices in planet-forming disks: Self-consistent ice opacities in disk models
Cited by in corpus (8)
- The diverse chemistry of protoplanetary disks as revealed by JWST
- OH mid-infrared emission as a diagnostic of HO UV photodissociation. III. Application to planet-forming disks
- A JWST/MIRI analysis of the ice distribution and PAH emission in the protoplanetary disk HH 48 NE
- Three-Dimensional Dust Stirring by a Giant Planet Embedded in a Protoplanetary Disk
- Magnetic disk winds in protoplanetary disks: Description of the model and impact on global disk evolution
- PRODIGE -- Planet-forming disks in Taurus with NOEMA. I. Overview and first results for 12CO, 13CO, and C18O
- Understanding JWST water spectra: what can thermochemical models tell us about the (cold) water in protoplanetary disks?
- Variation of the disk thickness across ice bands: A method to determine ice abundances in highly inclined protoplanetary disks