NONSTEADY STATE IONOSPHERE PLASMASPHERE COUPLING OF SUPERTHERMAL ELECTRONS

被引:46
作者
KHAZANOV, GV
LIEMOHN, MW
机构
关键词
D O I
10.1029/95JA00526
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Numerical solutions to the nonsteady state kinetic equation which describes the transport of Superthermal electrons in the ionosphere and plasmasphere between the magnetically conjugate regions of the ionosphere are presented. The distribution function in time, distance along arbitrary geomagnetic field lines, energy, and pitch angle are among the parameters calculated by the model. This model represents a unified approach by self-consistently coupling the interaction of the two hemispheres and the trapping of superthermal electrons in the plasmasphere. Our calculations take into account the various ionization and excitation processes and the effect of an inhomogeneous magnetic field (i.e., magnetic mirroring of precipitating electrons and focusing of escaping electrons along magnetic field lines). Omnidirectional flux spectra and pitch angle distributions are shown for various L shells and situations, and the features are described in detail. Nonsteady state calculations predict that a depleted flux tube can take several hours to reach steady state levels again. Plasmaspheric transparencies are calculated for different conditions of illumination, scattering processes in the conjugate ionospheres, and field-aligned gradients of the thermal plasma density. Plasmaspheric transparency is found to be: a complicated function of not only the plasmaspheric thermal plasma but also the ionospheric sources and scattering processes. A phenomenological model is used to describe the energy transmission, reflection, and deposition in the plasmasphere. By studying the ionosphere arid plasmasphere as one system rather than two separate ones, substantial corrections are introduced in the values of key parameters describing photoelectron fluxes.
引用
收藏
页码:9669 / 9681
页数:13
相关论文
共 46 条
[31]   THEORY OF PHOTOELECTRON THERMALIZATION AND TRANSPORT IN IONOSPHERE [J].
MANTAS, GP .
PLANETARY AND SPACE SCIENCE, 1975, 23 (02) :337-354
[32]   PENETRATION OF SOFT ELECTRONS INTO IONOSPHERE [J].
MANTAS, GP ;
WALKER, JCG .
PLANETARY AND SPACE SCIENCE, 1976, 24 (05) :409-423
[33]   PHOTOELECTRON FLUXES IN IONOSPHERE [J].
NAGY, AF ;
BANKS, PM .
JOURNAL OF GEOPHYSICAL RESEARCH, 1970, 75 (31) :6260-+
[34]   THERMAL HE+ IN THE PLASMASPHERE - COMPARISON OF OBSERVATIONS WITH NUMERICAL-CALCULATIONS [J].
NEWBERRY, IT ;
COMFORT, RH ;
RICHARDS, PG ;
CHAPPELL, CR .
JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 1989, 94 (A11) :15265-15276
[35]   PHOTOELECTRON FLUX IN EARTHS IONOSPHERE [J].
ORAN, ES ;
STRICKLAND, DJ .
PLANETARY AND SPACE SCIENCE, 1978, 26 (12) :1161-1177
[36]   ELECTRON-DENSITY IN PLASMASPHERE - WHISTLER DATA ON SOLAR-CYCLE, ANNUAL, AND DIURNAL-VARIATIONS [J].
PARK, CG ;
CARPENTER, DL ;
WIGGIN, DB .
JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 1978, 83 (NA7) :3137-3144
[37]   ITERATIVE SOLUTION OF THE MULTISTREAM ELECTRON-TRANSPORT EQUATION .1. COMPARISON WITH LABORATORY BEAM INJECTION EXPERIMENTS [J].
PORTER, HS ;
VAROSI, F ;
MAYR, HG .
JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 1987, 92 (A6) :5933-5959
[38]   PHOTO-ELECTRONS IN UPPER-ATMOSPHERE - FORMULATION INCORPORATING EFFECTS OF TRANSPORT [J].
PRATHER, MJ ;
MCELROY, MB ;
RODRIGUEZ, J .
PLANETARY AND SPACE SCIENCE, 1978, 26 (02) :131-138
[39]   PLASMA TEMPERATURES IN MAGNETOSPHERE [J].
SANATANI, S ;
HANSON, WB .
JOURNAL OF GEOPHYSICAL RESEARCH, 1970, 75 (04) :769-+
[40]   THE AURORAL 6300-A EMISSION - OBSERVATIONS AND MODELING [J].
SOLOMON, SC ;
HAYS, PB ;
ABREU, VJ .
JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 1988, 93 (A9) :9867-9882