地球磁层中质子俯仰角分布的各向异性动力学模拟

S. V. Smolin
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引用次数: 0

摘要

近年来,对带电粒子俯仰角分布各向异性的研究得到了极大的重视。因此,为了研究质子俯仰角分布的各向异性动力学,采用了环电流二维现象学模型(PheMRC 2d),该模型包括径向和俯仰角扩散,并考虑了波粒相互作用造成的损失。1999年10月21日至22日在极地/MICS卫星上收集了磁暴期间的实验数据。通过求解俯仰角和径向扩散的非平稳二维方程,数值确定了磁暴期间俯仰角为90度时,地磁活动kp指数从风暴开始时的2变化到风暴结束时的7+时,质子俯仰角分布的各向异性指数(或质子俯仰角分布的参数)。从McIlwain参数L (2.26 < L < 6.6)得到了不同时刻能量E = 90 keV时垂直质子俯仰角分布各向异性指数的依赖关系。1999年10月21-22日的磁暴在定量层面上可以确定,在地球磁层夜侧(MLT = 2300)的地磁活动kp指数增加的时间和地点,质子俯仰角分布由正态(煎饼)向蝶形(蝴蝶)转变。这使得在给定的具体情况下,可以明确而精确地确定质子俯仰角分布的各向异性动力学。结果表明,随着地磁活动Kp指数的增加,各向同性质子俯仰角分布的边界越来越接近地球,在Kp = 7+处达到L≈3.6
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Modeling of Anisotropy Dynamics of the Proton Pitch Angle Distribution in the Earth’s Magnetosphere
Last years the attention to research of anisotropy of the charged particle pitch angle distribution has considerably increased. Therefore for research of anisotropy dynamics of the proton pitch angle distribution is used the two-dimensional Phenomenological Model of the Ring Current (PheMRC 2-D), which includes the radial and pitch angle diffusions with consideration of losses due to wave-particle interactions. Experimental data are collected on the Polar/MICS satellite during the magnetic storm on October 21–22, 1999. Solving the non-stationary two-dimensional equation of pitch angle and radial diffusions, numerically was determined the proton pitch angle distribution anisotropy index (or parameter of the proton pitch angle distribution) for the pitch angle of 90 degrees during the magnetic storm, when the geomagnetic activity Kp-index changed from 2 in the beginning of a storm up to 7+ in the end of a storm. Dependence of the perpendicular proton pitch angle distribution anisotropy index with energy E = 90 keV during the different moments of time from the McIlwain parameter L (2.26 < L < 6.6) is received. It is certain at a quantitative level for the magnetic storm on October 21–22, 1999, when and where on the nightside of the Earth’s magnetosphere (MLT = 2300) to increase in the geomagnetic activity Kp-index there is a transition from normal (pancake) proton pitch angle distributions to butterfly proton pitch angle distributions. That has allowed to determine unequivocally and precisely the anisotropy dynamics of the proton pitch angle distribution in the given concrete case. It is shown, that with increase of the geomagnetic activity Kp-index the boundary of isotropic proton pitch angle distribution comes nearer to the Earth, reaching L ≈ 3.6 at Kp = 7+
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