Heating Titan's upper atmosphere

被引:24
作者
De La Haye, V. [1 ]
Waite, J. H., Jr. [1 ]
Cravens, T. E. [3 ]
Bougher, S. W. [2 ]
Robertson, I. P. [3 ]
Bell, J. M. [1 ]
机构
[1] SW Res Inst, San Antonio, TX 78228 USA
[2] Univ Michigan, Dept Atmospher Ocean & Space Sci, Ann Arbor, MI 48109 USA
[3] Univ Kansas, Dept Phys & Astron, Lawrence, KS 66045 USA
关键词
D O I
10.1029/2008JA013078
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
A detailed analysis of the mechanisms heating Titan's neutral atmosphere is provided. Two primary sources of incoming energy, the solar photons and the energetic electrons from Saturn's magnetosphere, are taken into account. The processes studied include the excitation of atmospheric molecules by electron impact, suprathermal electron heating, and the energy release through ion and neutral exothermic chemistry. The redistribution of heat by suprathermal particles throughout the atmosphere is also considered and calculated using a two-stream model. Local time-dependent heating rate profiles are presented. Exothermic chemistry is found to be the dominant source of heat, with electron-impact excitation and suprathermal electron heating becoming significant at high altitudes. Large variations in local peak amplitudes were found, varying between similar or equal to 3 x 10(-10) erg cm(-3)s(-1) at 990 km and zenith angle 62 degrees and similar or equal to 7 x 10(-12) erg cm(-3)s(-1) at 940 km and zenith angle 165 degrees. Neutral heating efficiency profiles averaged with respect to local time at the fixed latitudes of 38.8 degrees N and 73.7 degrees N are presented, with mean values of similar or equal to 25 +/- 15% and 23 +/- 19%, respectively.
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页数:22
相关论文
共 73 条
[31]   TOTAL (ELASTIC + ABSORPTION) CROSS-SECTIONS FOR E-CH4 COLLISIONS IN A SPHERICAL MODEL AT 0.10-500 EV [J].
JAIN, A .
PHYSICAL REVIEW A, 1986, 34 (05) :3707-3722
[32]   ROTATIONAL-EXCITATION OF CH4 AND H2O BY SLOW-ELECTRON IMPACT [J].
JAIN, A ;
THOMPSON, DG .
JOURNAL OF PHYSICS B-ATOMIC MOLECULAR AND OPTICAL PHYSICS, 1983, 16 (16) :3077-3098
[33]   STATE-SPECIFIC ELECTRONIC QUENCHING RATES FOR THE N-2 A (1)PI(G)(V=0) LEVEL FROM COLLISIONS WITH HE, AR, AND N-2 [J].
KATAYAMA, DH ;
DENTAMARO, AV ;
WELSH, JA .
JOURNAL OF CHEMICAL PHYSICS, 1994, 101 (11) :9422-9428
[34]   A three-dimensional MHD model of plasma flow around Titan [J].
Ledvina, SA ;
Cravens, TE .
PLANETARY AND SPACE SCIENCE, 1998, 46 (9-10) :1175-1191
[35]  
LIAS SG, 1988, J PHYS CHEM REF DATA, V17, P1
[36]   REACTIONS OF METASTABLE NITROGEN ATOMS [J].
LIN, CL ;
KAUFMAN, F .
JOURNAL OF CHEMICAL PHYSICS, 1971, 55 (08) :3760-&
[37]   3-D global MHD model prediction for the first close flyby of Titan by Cassini [J].
Ma, YJ ;
Nagy, AF ;
Cravens, TE ;
Sokolov, IV ;
Clark, J ;
Hansen, KC .
GEOPHYSICAL RESEARCH LETTERS, 2004, 31 (22) :1-4
[38]   QUENCHING OF N2(A1-PI-G, V'=0) BY N-2, O-2, CO, CO-2, CH-4, H-2, AND AR [J].
MARINELLI, WJ ;
KESSLER, WJ ;
GREEN, BD ;
BLUMBERG, WAM .
JOURNAL OF CHEMICAL PHYSICS, 1989, 90 (04) :2167-2173
[39]  
MCEWAN JM, 1975, CHEM ATMOSPHERE
[40]   Energy deposition of pickup ions and heating of Titan's atmosphere [J].
Michael, M ;
Johnson, RE .
PLANETARY AND SPACE SCIENCE, 2005, 53 (14-15) :1510-1514