KINETIC-THEORY OF GEOMAGNETIC-PULSATIONS .1. INTERNAL EXCITATIONS BY ENERGETIC PARTICLES

被引:251
作者
CHEN, L
HASEGAWA, A
机构
[1] PRINCETON UNIV, DEPT ASTROPHYS SCI, PRINCETON, NJ 08543 USA
[2] AT&T BELL LABS, MURRAY HILL, NJ 07974 USA
关键词
D O I
10.1029/90JA02346
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Motivated by recent satellite observations, we have carried out a comprehensive theoretical analysis on the generation of hydromagnetic Alfven waves in a realistic magnetospheric plasma environment consisting of a core (approximately 100 eV) component and and energetic (approximately 10 keV) component. Our theoretical formulation employs the gyrokinetic equations and, thus, retains anisotropy, finite Larmor radii, magnetic trapping, and wave-particle interactions in addition to nonuniform plasma equilibria. A set of coupled equations for transverse and compressional magnetic perturbations is derived and analyzed for its stabilities assuming equilibrium distribution functions which are interchange stable. Our findings are as follows: (1) compressional and transverse shear Alfven oscillations are generally coupled in realistic plasmas; (2) in the decoupled limit, for the compressional wave branch, one recovers the drift mirror instability due to the Landau resonances and tau = 1 + 4-pi(partial-derivative P perpendicular-to /B partial-derivative B) < 0; here, P perpendicular-to = P perpendicular-to (psi, B) is the perpendicular pressure and psi is the magnetic flux function; (3) for the decoupled transverse shear Alfven branch, one obtains the drift Alfven ballooning instability due to the Landau resonances and free energy of the pressure gradient for tau > 0; (4) for both branches, the most unstable modes have antisymmetric structures and propagate in the diamagnetic drift direction of the energetic ions; and (5) finite coupling can be shown to further enhance the drift Alfven ballooning instabilities. Thus we conclude that for tau greater-than-or-equal-to 0, the coupled drift Alfven ballooning mirror instability constitutes an important internal generating mechanism of geomagnetic pulsations. The various predicted features of this instability are consistent with satellite observations.
引用
收藏
页码:1503 / 1512
页数:10
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