非风暴期间波粒相互作用驱动的环电流质子动力学

S. V. Smolin
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引用次数: 1

摘要

非风暴期环形电流质子与电磁离子回旋波相互作用时的俯角散射模型很少考虑。为此,利用2003年3月26日至27日非风暴期(Dst > -10 nT)在L = 4.5位置附近由Cluster卫星采集的增强电磁离子回旋波与环流质子通量动态演变的相关观测。高能(5-30 keV)质子通量在较低的俯仰角下迅速下降(例如,半小时),对应于增强的电磁波活动。采用非平稳一维俯仰角扩散方程作为数学模型,可以数值计算地球磁层中带电粒子的相空间密度或俯仰角分布。该模型依赖于时间t、局部俯仰角和几个参数(粒子的质量、能量、McIlwain参数、磁局部时间或地磁东经、地磁活动指数、t = 0时90度俯仰角的带电粒子俯仰角分布参数、波粒相互作用的寿命)。该模型还允许在不同的地球物理条件下对波粒相互作用的寿命进行数值估计。结果表明,EMIC波可以在30分钟内产生质子通量的减少,这与观测数据一致。得到了良好的同意。对俯仰角为0 ~ 180度的全模型和俯仰角为90度的模型结果进行了比较。对于地球环电流质子的垂直微分通量,得到了非常好的一致性,最大相对误差约为3.23%
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ring Current Proton Dynamics Driven by Wave-Particle Interactions During a Nonstorm Period
Modeling of pitch angle scattering of ring current protons at interaction with electromagnetic ion cyclotron waves during a nonstorm period was considered very seldom. Therefore it is used correlated observation of enhanced electromagnetic ion cyclotron (EMIC) waves and dynamic evolution of ring current proton flux collected by Cluster satellite near the location L = 4.5 during March 26–27, 2003, a nonstorm period (Dst > –10 nT). Energetic (5–30 keV) proton fluxes are found to drop rapidly (e.g., a half hour) at lower pitch angles, corresponding to intensified EMIC wave activities. As mathematical model is used the non-stationary one-dimensional pitch angle diffusion equation which allows to compute numerically density of phase space or pitch angle distribution of the charged particles in the Earth’s magnetosphere. The model depends on time t, a local pitch angle and several parameters (the mass of a particle, the energy, the McIlwain parameter, the magnetic local time or geomagnetic eastern longitude, the geomagnetic activity index, parameter of the charged particle pitch angle distribution taken for the 90 degrees pitch angle at t = 0, the lifetime due to wave–particle interactions). This model allows numerically to estimate also for different geophysical conditions a lifetime due to wave–particle interactions. It is shown, that EMIC waves can yield decrements in proton flux within 30 minutes, consistent with the observational data. The good consent is received. Comparison of results on full model for the pitch angle range from 0 up to 180 degrees and on the model for the 90 degrees pitch angle is lead. For a perpendicular differential flux of the Earth’s ring current protons very good consent with the maximal relative error approximately 3.23 % is received
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