HR: 1340h
AN: P23B-1368 [Abstracts]
TI: Plasma Heating of Titan's Exobase and Corona
AU: * Karn, M
EM: mek4x@cms.mail.virginia.edu
AF: University of Virginia, Thornton Hall, Charlottesville, VA 22902, United States
AU: Smith, H T
EM: htodds@aol.com
AF: JHU/APL, Johns Hopkins Road, Laurel, MD 20723, United States
AU: Tucker, O J
EM: ojt9j@virginia.edu
AF: University of Virginia, Thornton Hall, Charlottesville, VA 22902, United States
AU: Johnson, R E
EM: rej@virginia.edu
AF: University of Virginia, Thornton Hall, Charlottesville, VA 22902, United States
AU: De La Haye, V
EM: virginie.patt@gmail.com
AF: SwRI, 6220 Culebra, San Antonio, TX 78228, United States
AU: Waite, J H
EM: hwaite@swri.edu
AF: SwRI, 6220 Culebra, San Antonio, TX 78228, United States
AU: Young, D A
EM: dyoung@swri.edu
AF: SwRI, 6220 Culebra, San Antonio, TX 78228, United States
AB:
Cassini data have shown that the dominant heating process for Titan's atmospheric corona and exobase region
is as yet uncertain (DeLaHaye et al. 2007). We have speculated that the incident plasma, both the slowed and
deflected ambient ions and the pick-up ions, may be responsible for all or a significant fraction of the non-thermal
component of Titan's corona (De La Haye et al. 2007). Our earlier models of the net incident plasma heating
(Michael et al. 2004; 2005) fall short in describing the coronal structure seen by INMS on Ta, Tb and T5. Since
heating of the corona and exobase affects atmospheric escape, it is critical for describing the evolution of Titan's
atmosphere (Johnson 2004). Here we describe an empirical approach to this problem. INMS data and the
preliminary CAPS flux data clearly indicate, not surprisingly, that the heating is spatially non-uniform and is
variable, but there is as yet no correlation with the plasma flow models. Therefore, we haev analyzed INMS data
for the atmospheric structure near the exobase for a large number of Cassini passes through the exobase region
and we have analyzed certain CAPS data for the plasma flow near the exobase. The goal is to develop a model
for the spatial variations in the plasma heating near the exobase with the goal of improving our knowledge of
atmospheric escape.
De La Haye, V.. et al., JGR 112, A07309, doi:10.1029/2006JA012222, 2007
Johnson, R.E. ApJ 609, L99, 2004
Michael, M., and R. E. Johnson. PSS 53, 1510, 2005.
Michael, M., et al. Icarus, 175, 263, 2005.
DE: 5405 Atmospheres (0343, 1060)
DE: 6060 Radiation and chemistry
SC: Planetary Sciences [P]
MN: 2007 Fall Meeting