HR: 16:00h
AN: SA14A-01 [Abstracts]
TI: Theoretical and Empirical Descriptions of Thermospheric Density
AU: * Solomon, S C
EM: stans@ucar.edu
AF: National Center for Atmospheric Research, High Altitude Observatory
3450 Mitchell Lane, Boulder, CO 80301
United States
AU: Qian, L
EM: lqian@ucar.edu
AF: National Center for Atmospheric Research, High Altitude Observatory
3450 Mitchell Lane, Boulder, CO 80301
United States
AB:
The longest-term and most accurate overall description the density of the upper thermosphere is provided by analysis of
change in the ephemeris of Earth-orbiting satellites. Empirical models of the thermosphere developed in part from these
measurements can do a reasonable job of describing thermospheric properties on a climatological basis, but the promise of
first-principles global general circulation models of the coupled thermosphere/ionosphere system is that a true
high-resolution, predictive capability may ultimately be developed for thermospheric density. However, several issues are
encountered when attempting to tune such models so that they accurately represent absolute densities as a function of
altitude, and their changes on solar-rotational and solar-cycle time scales. Among these are the crucial ones of getting the
heating rates (from both solar and auroral sources) right, getting the cooling rates right, and establishing the appropriate
boundary conditions. However, there are several ancillary issues as well, such as the problem of registering a
pressure-coordinate model onto an altitude scale, and dealing with possible departures from hydrostatic equilibrium in
empirical models. Thus, tuning a theoretical model to match empirical climatology may be difficult, even in the absence of
high temporal or spatial variation of the energy sources. We will discuss some of the challenges involved, and show
comparisons of simulations using the NCAR Thermosphere-Ionosphere-Electrodynamics General Circulation Model (TIE-GCM) to
empirical model estimates of neutral thermosphere density and temperature. We will also show some recent simulations using
measured solar irradiance from the TIMED/SEE instrument as input to the TIE-GCM.
DE: 7538 Solar irradiance
DE: 0355 Thermosphere--composition and chemistry
DE: 0358 Thermosphere--energy deposition
SC: SPA-Aeronomy [SA]
MN: 2004 AGU Fall Meeting