Convective storms and atmospheric vertical structure in Uranus and Neptune
arXiv:2111.15494 · doi:10.1098/rsta.2019.0476
Abstract
The Ice Giants Uranus and Neptune have hydrogen-based atmospheres with several constituents that condense in their cold upper atmospheres. A small number of bright cloud systems observed in both planets are good candidates for moist convective storms, but their observed properties (size, temporal scales and cycles of activity) differ from moist convective storms in the Gas Giants. These clouds and storms are possibly due to methane condensation and observations also suggest deeper clouds of hydrogen sulfide (HS) at depths of a few bars. Even deeper, thermochemical models predict clouds of ammonia hydrosulfide (NHSH) and water at pressures of tens to hundreds of bars, forming extended deep weather layers. Because of hydrogen's small molecular weight and the high abundance of volatiles, their condensation imposes a strongly stabilizing vertical gradient of molecular weight larger than the equivalent one in Jupiter and Saturn. The resulting inhibition of vertical motions should lead to a moist convective regime that differs significantly from the one occurring on nitrogen-based atmospheres like those of Earth or Titan. As a consequence, the thermal structure of the deep atmospheres of Uranus and Neptune is not well understood. Similar processes might occur at the deep water cloud of Jupiter in Saturn, but the Ice Giants offer the possibility to study these physical aspects in the upper methane cloud layer. A combination of orbital and in situ data will be required to understand convection and its role in atmospheric dynamics in the Ice Giants, and by extension, in hydrogen atmospheres including Jupiter, Saturn and giant exoplanets.
References in corpus (20)
- The Exoplanet Mass-Ratio Function from the MOA-II Survey: Discovery of a Break and Likely Peak at a Neptune Mass
- The water abundance in Jupiter's equatorial zone
- Condensation-inhibited convection in hydrogen-rich atmospheres: Stability against double-diffusive processes and thermal profiles for Jupiter, Saturn, Uranus, and Neptune
- Methane on Uranus: The case for a compact CH4 cloud layer at low latitudes and a severe CH4 depletion at high-latitudes based on re-analysis of Voyager occultation measurements and STIS spectroscopy
- Saturn's deep atmospheric flows revealed by the Cassini Grand Finale gravity measurements
- Probable detection of hydrogen sulphide (HS) in Neptune's atmosphere
- Record-breaking Storm Activity on Uranus in 2014
- Jupiter's Ammonia Distribution Derived from VLA Maps at 3--37 GHz
- Uranus at equinox: Cloud morphology and dynamics
- Moist Convection and the 2010-2011 Revival of Jupiter's South Equatorial Belt
- Simulating Non-hydrostatic atmospheres on Planets (SNAP): formulation, validation and application to the Jovian atmosphere
- Storms and the Depletion of Ammonia in Jupiter: II. Explaining the Juno Observations
- Neptune's Latitudinal Variations as Viewed with ALMA
- HST/WFC3 Observations of Uranus' 2014 storm clouds and comparison with VLT/SINFONI and IRTF/SpeX observations
- Cycles of Activity in the Jovian Atmosphere
- Neptune long-lived atmospheric features in 2013-2015 from small (28-cm) to large (10-m) telescopes
- Observations and numerical modelling of a convective disturbance in a large-scale cyclone in Jupiter's South Temperate Belt
- Retrieving Neptune's aerosol properties from Keck OSIRIS observations. I. Dark regions
- Cloud clearing in the wake of Saturn's Great Storm of 2010 - 2011 and suggested new constraints on Saturn's He/H2 ratio
- Revealing Giant Planet Interiors Beneath the Cloudy Veil
Cited by in corpus (5)
- Dynamics and Clouds in Planetary Atmospheres from Telescopic Observations
- Zonal winds of Uranus and Neptune: Gravitational harmonics, dynamic self-gravity, shape, and rotation
- The deep oxygen abundance in Solar System Giant Planets, with a new derivation for Saturn
- An idealized general circulation model for the atmospheric circulation on the ice giants
- Solid-liquid phase change in planetary cores