Rocket dust storms and detached dust layers in the Martian atmosphere
arXiv:1208.5030 · doi:10.1002/jgre.20046
Abstract
Airborne dust is the main climatic agent in the Martian environment. Local dust storms play a key role in the dust cycle; yet their life cycle is poorly known. Here we use mesoscale modeling that includes the transport of radiatively active dust to predict the evolution of a local dust storm monitored by OMEGA on board Mars Express. We show that the evolution of this dust storm is governed by deep convective motions. The supply of convective energy is provided by the absorption of incoming sunlight by dust particles, rather than by latent heating as in moist convection on Earth. We propose to use the terminology "rocket dust storm", or conio-cumulonimbus, to describe those storms in which rapid and efficient vertical transport takes place, injecting dust particles at high altitudes in the Martian troposphere (30 to 50 km). Combined to horizontal transport by large-scale winds, rocket dust storms produce detached layers of dust reminiscent of those observed with Mars Global Surveyor and Mars Reconnaissance Orbiter. Since nighttime sedimentation is less efficient than daytime convective transport, and the detached dust layers can convect during the daytime, these layers can be stable for several days. The peak activity of rocket dust storms is expected in low-latitude regions at clear seasons (late northern winter to late northern summer), which accounts for the high-altitude tropical dust maxima unveiled by Mars Climate Sounder. Dust-driven deep convection have strong implications for the Martian dust cycle, thermal structure, atmospheric dynamics, cloud microphysics, chemistry, and robotic and human exploration.
33 pages, 13 figures, accepted for Journal of Geophysical Research (Planets)
References in corpus (1)
Cited by in corpus (15)
- Martian Year 34 Column Dust Climatology from Mars Climate Sounder Observations: Reconstructed Maps and Model Simulations
- Global Climate Modeling of the Martian water cycle with improved microphysics and radiatively active water ice clouds
- Atmospheric Escape Processes and Planetary Atmospheric Evolution
- Strong variability of Martian water ice clouds during dust storms revealed from ExoMars Trace Gas Orbiter/NOMAD
- Simulation of the 2018 Global Dust Storm on Mars Using the NASA Ames Mars GCM: A Multi-Tracer Approach
- Impact of gravity waves on the middle atmosphere of Mars: a non-orographic gravity wave parameterization based on Global Climate modeling and MCS observations
- Study of gravity waves distribution and propagation in the thermosphere of Mars based on MGS, ODY, MRO and MAVEN density measurements
- Impact of the coagulation of dust particles on Mars during the 2018 global dust storm
- Numerical Modeling of Orbit-Spin Coupling Accelerations in a Mars General Circulation Model: Implications for Global Dust Storm Activity
- A modern-day Mars climate in the Met Office Unified Model: dry simulations
- Dynamical phenomena in the Martian atmosphere through Mars Express imaging
- Disentangling the dominant drivers of gravity wave variability in the Martian thermosphere
- OMEGA/Mars Express: A new martian atmospheric dust hunter
- Can we constrain the origin of Mars' recurring slope lineae using atmospheric observations?
- Diurnal and Seasonal variations of Gravity Waves in the lower atmosphere of Mars as observed by Insight