A Mini-Chemical Scheme with Net Reactions for 3D GCMs I.: Thermochemical Kinetics
arXiv:2204.04201 · doi:10.1051/0004-6361/202142816
Abstract
Growing evidence has indicated that the global composition distribution plays an indisputable role in interpreting observational data. 3D general circulation models (GCMs) with a reliable treatment of chemistry and clouds are particularly crucial in preparing for the upcoming observations. In the effort of achieving 3D chemistry-climate modeling, the challenge mainly lies in the expensive computing power required for treating a large number of chemical species and reactions. Motivated by the need for a robust and computationally efficient chemical scheme, we devise a mini-chemical network with a minimal number of species and reactions for H-dominated atmospheres. We apply a novel technique to simplify the chemical network from a full kinetics model -- VULCAN by replacing a large number of intermediate reactions with net reactions. The number of chemical species is cut down from 67 to 12, with the major species of thermal and observational importance retained, including HO, CH, CO, CO, CH, NH, and HCN. The size of the total reactions is greatly reduced from 800 to 20. The mini-chemical scheme is validated by verifying the temporal evolution and benchmarking the predicted compositions in four exoplanet atmospheres (GJ 1214b, GJ 436b, HD 189733b, HD 209458b) against the full kinetics of VULCAN. It reproduces the chemical timescales and composition distributions of the full kinetics well within an order of magnitude for the major species in the pressure range of 1 bar -- 0.1 mbar across various metallicities and carbon-to-oxygen (C/O) ratios. The small scale of the mini-chemical scheme permits simple use and fast computation, which is optimal for implementation in a 3D GCM or a retrieval framework. We focus on the thermochemical kinetics of net reactions in this paper and address photochemistry in a follow-up paper.
9 pages, 5 figures, accepted for publication in A&A
References in corpus (21)
- A chemical model for the atmosphere of hot Jupiters
- Dynamics and Disequilibrium Carbon Chemistry in Hot Jupiter Atmospheres, With Application to HD 209458b
- Methane, Carbon Monoxide, and Ammonia in Brown Dwarfs and Self-Luminous Giant Planets
- VULCAN: an Open-Source, Validated Chemical Kinetics Python Code for Exoplanetary Atmospheres
- New Analysis Indicates No Thermal Inversion in the Atmosphere of HD 209458b
- Self-luminous and irradiated exoplanetary atmospheres explored with HELIOS
- A Comparative Study of Atmospheric Chemistry with VULCAN
- Evidence against a strong thermal inversion in HD 209458 b from high-dispersion spectroscopy
- A new chemical scheme for giant planet thermochemistry. Update of the methanol chemistry and new reduced chemical scheme
- Grid of Pseudo-2D Chemistry Models for Tidally-Locked Exoplanets. I. The Role of Vertical and Horizontal Mixing
- Photochemistry in hot H2-dominated exoplanet atmospheres
- Evidence for disequilibrium chemistry from vertical mixing in hot Jupiter atmospheres. A comprehensive survey of transiting close-in gas giant exoplanets with warm-Spitzer/IRAC
- Chemical variation with altitude and longitude on exo-Neptunes: Predictions for Ariel phase-curve observations
- Implementation of disequilibrium chemistry to spectral retrieval code ARCiS and application to sixteen exoplanet transmission spectra: Indication of disequilibrium chemistry for HD 209458b and WASP-39b
- 2D Retrieval Frameworks for Hot Jupiter Phase Curves
- A reduced chemical scheme for modelling warm to hot hydrogen-dominated atmospheres
- Towards multi-dimensional analysis of transmission spectroscopy. Part II: Day-night induced biases in retrievals from hot to ultra-hot Jupiters
- A chemical kinetics code for modelling exoplanetary atmospheres
- Pseudo-2D Modelling of Heat Redistribution Through H Thermal Dissociation/Recombination: Consequences for Ultra-Hot Jupiters
- Ariel: Enabling planetary science across light-years
- Global Chemistry and Thermal Structure Models for the Hot Jupiter WASP-43b and Predictions for JWST
Cited by in corpus (12)
- A Benchmark JWST Near-Infrared Spectrum for the Exoplanet WASP-39b
- Observability of signatures of transport-induced chemistry in clear atmospheres of hot gas giant exoplanets
- Escaping Helium and a Highly Muted Spectrum Suggest a Metal-Enriched Atmosphere on Sub-Neptune GJ3090b from JWST Transit Spectroscopy
- A Mini-Chemical Scheme with Net Reactions for 3D GCMs II. 3D thermochemical modelling of WASP-39b and HD 189733b
- Challenges in the detection of gases in exoplanet atmospheres
- Global Chemical Transport on Hot Jupiters: Insights from 2D VULCAN photochemical model
- Dynamically coupled kinetic chemistry in brown dwarf atmospheres I. Performing global scale kinetic modelling
- Three-dimensional dynamical evolution of cloud particle microphysics in sub-stellar atmospheres I. Description and exploring Y-dwarf atmospheric variability
- A physically derived eddy parameterization for giant planet atmospheres with application on hot-Jupiter atmospheres
- ARES VI: Viability of one-dimensional retrieval models for transmission spectroscopy characterization of exo-atmospheres in the era of JWST and Ariel
- Hydrocarbon complexity and photochemical shielding of prebiotic feedstock molecules in exoplanet atmospheres
- Three-dimensional transport-induced chemistry on temperate sub-Neptune K2-18b, Part II: the combined effects of atmospheric dynamics and chemical reactions