Relativistic kinematic effects in the interaction time of whistler-mode chorus waves and electrons in the outer radiation belt

IF 1.7 4区 地球科学 Q3 ASTRONOMY & ASTROPHYSICS
Livia R. Alves, Márcio E. S. Alves, Ligia A. da Silva, Vinicius Deggeroni, Paulo R. Jauer, David G. Sibeck
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引用次数: 1

Abstract

Abstract. Whistler-mode chorus waves propagate outside the plasmasphere, interacting with energetic electrons in the outer radiation belt. This leads to local changes in the phase space density distribution due to energy or pitch angle diffusion. The wave–particle interaction time (Tr) is crucial in estimating time-dependent processes such as the energy and pitch angle diffusion. Although the wave group and particle velocities are a fraction of the speed of light, the kinematics description of the wave–particle interaction for relativistic electrons usually considers the relativistic Doppler shift in the resonance condition and relativistic motion equation. This relativistic kinematics description is incomplete. In this paper, to the literature we add a complete relativistic description of the problem that relies on the relativistic velocity addition (between the electron and the wave) and the implications of the different reference frames for the estimates of the interaction time. We use quasi-linear test particle equations and the special relativity theory applied to whistler-mode chorus waves parallel propagating in cold-plasma magnetosphere interaction with relativistic electrons. Also, we consider that the resonance occurs in the electron's reference frame. At the same time, the result of such interaction and their parameters are measured in the local inertial reference frame of the satellite. The change pitch angle and the average diffusion coefficient rates are then calculated from the relativistic interaction time. The interaction time equation is consistent with previous works in the limit of non-relativistic interactions (Tnr). For the sake of application, we provide the interaction time and average diffusion coefficient Daa for four case studies observed during the Van Allen Probes era. Our results show that the interaction time is generally longer when applying the complete relativistic approach, considering a non-relativistic calculation. From the four case studies, the ratio Tr/Tnr varies in the range 1.7–3.0 and Daa/Daanr in the range 1.9–5.4. Accurately calculating the interaction time with full consideration of special relativity can enhance the modeling of the electron flux in Earth's outer radiation belt. Additionally, the change in pitch angle depends on the time of interaction, and similar discrepancies can be found when the time is calculated with no special relativity consideration. The results described here have several implications for modeling relativistic outer-radiation-belt electron flux resulting from the wave–particle interaction. Finally, since we considered only one wave cycle interaction, the average result from some interactions can bring more reliable results in the final flux modeling.
外辐射带中哨子模合唱波与电子相互作用时间的相对论运动学效应
摘要口哨模式的合唱波在等离子层外传播,与外部辐射带中的高能电子相互作用。这将导致能量或俯仰角扩散导致相空间密度分布的局部变化。波粒相互作用时间(Tr)是估计能量和俯仰角扩散等时变过程的关键。虽然波群和粒子速度是光速的一小部分,但相对论性电子的波粒相互作用的运动学描述通常考虑共振条件和相对论性运动方程中的相对论性多普勒频移。这种相对论的运动学描述是不完整的。在本文中,我们在文献中添加了一个完整的相对论性描述,该描述依赖于相对论性速度相加(在电子和波之间)和不同参考系对相互作用时间估计的含义。我们利用准线性测试粒子方程和狭义相对论理论,研究了在冷等离子体磁层中与相对论电子相互作用平行传播的哨子模合唱波。同时,我们认为共振发生在电子的参考系中。同时,在卫星的局部惯性参照系中测量了这种相互作用的结果及其参数。然后根据相对论性相互作用时间计算出变螺距角和平均扩散系数率。在非相对论性相互作用的极限(Tnr)下,相互作用时间方程与前人的研究一致。为了便于应用,我们给出了在范艾伦探测器时代观测到的四个案例的相互作用时间和平均扩散系数Daa。我们的结果表明,在考虑非相对论性计算时,应用完全相对论性方法时,相互作用时间通常更长。从四个案例研究来看,Tr/Tnr的比值在1.7-3.0范围内变化,Daa/Daanr在1.9-5.4范围内变化。在充分考虑狭义相对论的情况下精确计算相互作用时间,可以增强对地球外辐射带电子通量的建模。此外,俯仰角的变化取决于相互作用的时间,在不考虑狭义相对论的情况下计算时间也会发现类似的差异。本文所描述的结果对由波粒相互作用产生的相对论性外辐射带电子通量的建模具有若干意义。最后,由于我们只考虑了一个波周期的相互作用,所以在最终的通量建模中,一些相互作用的平均结果可以带来更可靠的结果。
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来源期刊
Annales Geophysicae
Annales Geophysicae 地学-地球科学综合
CiteScore
4.30
自引率
0.00%
发文量
42
审稿时长
2 months
期刊介绍: Annales Geophysicae (ANGEO) is a not-for-profit international multi- and inter-disciplinary scientific open-access journal in the field of solar–terrestrial and planetary sciences. ANGEO publishes original articles and short communications (letters) on research of the Sun–Earth system, including the science of space weather, solar–terrestrial plasma physics, the Earth''s ionosphere and atmosphere, the magnetosphere, and the study of planets and planetary systems, the interaction between the different spheres of a planet, and the interaction across the planetary system. Topics range from space weathering, planetary magnetic field, and planetary interior and surface dynamics to the formation and evolution of planetary systems.
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