HR: 11:20h
AN: SA12A-05 INVITED [Abstracts]
TI: Mars Atmospheric Evolution : What Can Dynamical Simulations Tell Us?
AU: * Bougher, S W
EM: bougher@umich.edu
AF: University of Michigan, AOSS Department
2455 Hayward Avenue, Ann Arbor, MI 48109-2143
United States
AU: Bell, J M
EM: jmbell@umich.edu
AF: University of Michigan, AOSS Department
2455 Hayward Avenue, Ann Arbor, MI 48109-2143
United States
AU: Fox, J L
EM: fox@platmo.phy.wright.edu
AF: Wright State University, Department of Physics, Dayton, OH 45435
United States
AB:
The history of the martian atmosphere and climate over time cannot be properly understood without knowing the role of loss of
water and other volatiles to space. Furthermore, the martian climate system is an integrated one, from below the surface to
above the exobase. Thus, volatile exchange and loss rates cannot be properly investigated without determining the role of the
upper atmosphere and its coupling
below (e.g. surface-atmosphere interactions, dynamics and energetics, dust storms) and influences above (e.g. solar wind
interaction).
Dynamical models (General Circulation Models) for the entire martian atmosphere ($\sim$0-250 km) are beginning to be
developed and exercised that address global energetics, chemistry, and dynamics. These models capture the key processes
coupling the Mars lower and upper atmospheres, basic photochemistry, as well as solar wind interaction processes. Important
volatile loss processes include : (a) solar wind stripping (i.e. pick-up ion loss), (b) photochemical loss (e.g.
dissociative recombination of O$_2$+), (c) thermal loss (i.e. Jeans escape of light species), and (d) impact ejection of the
atmosphere (i.e. sputtering). Each of these processes depends on the intensity of solar EUV radiation, which affects
thermospheric temperatures and densities, ionospheric properties, exosphere structure, and ultimately the fluxes of escaping
atoms and ions.
General Circulation Models (GCMs) provide the global context in which to understand present day escape processes and
extrapolate these processes into the past for ancient solar and martian conditions. Here we consider the effects of
higher solar EUV fluxes of the ancient sun upon the martian thermosphere-ionosphere structure. A reasonable characterization
of this atmospheric structure, and an
understanding of the underlying process that drive its variations, provide the foundation upon which escape rates can be
estimated over Mars history. The combination
of key spacecraft measurements (e.g. exobase temperatures and densities, ionization rates, hot atom distributions, pick-up
ion production rates) and detailed models (e.g. GCMs, ionospheric models, sputtering codes, MHD codes) are needed to quantify
present-day volatile escape rates. Model extrapolation of these escape rates into the past and integration of these rates
over time yields an estimate of the volatile (e.g. water) loss over most of martian history.
DE: 5409 Atmospheres--structure and dynamics
DE: 0355 Thermosphere--composition and chemistry
DE: 0358 Thermosphere--energy deposition
SC: SPA-Aeronomy [SA]
MN: 2004 AGU Fall Meeting