首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Nonlinear Landau Resonant Interaction Between Kinetic Alfvén Waves and Thermal Electrons: Excitation of Time Domain Structures
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Nonlinear Landau Resonant Interaction Between Kinetic Alfvén Waves and Thermal Electrons: Excitation of Time Domain Structures

机译:非线性朗道共振相互作用动力学阿尔芬波和电子热:激励的时域结构

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摘要

Phase space holes, double layers and other solitary electric field structures, referred to as time domain structures (TDSs), often occur around dipolarization fronts in the Earth's inner magnetosphere. They are considered to be important because of their role in the dissipation of the injection energy and their potential for significant particle scattering and acceleration. Kinetic Alfvén waves are observed to be excited during energetic particle injections, and are typically present in conjunction with TDS observations. Despite the availability of a large number of spacecraft observations, the origin of TDSs and their relation to kinetic Alfvén waves remains poorly understood to date. Part of the difficulty arises from the vast scale separations between kinetic Alfvén waves and TDSs. Here, we demonstrate that TDSs can be excited by electrons in nonlinear Landau resonance with kinetic Alfvén waves. These electrons get trapped by the parallel electric field of kinetic Alfvén waves, form localized beam distributions, and subsequently generate TDSs through beam instabilities. A big picture emerges as follows: macroscale dipolarization fronts first transfer the ion flow (kinetic) energy to kinetic Alfvén waves at intermediate scale, which further channel the energy to TDSs at the microscale and eventually deposit the energy to the thermal electrons in the form of heating. In this way, the ion flow energy associated with dipolarization fronts is effectively dissipated in a cascade from large to small scales in the inner magnetosphere.
机译:相空间洞、双层等孤独的电场结构,称为随着时间域结构(tds),经常发生在dipolarization方面地球的内部磁气圈。重要,因为他们的作用注入能量的耗散和他们重要的粒子散射和潜力加速度。在高能粒子感到兴奋注射,通常出现在结合TDS观察。获得大量的飞船观察,tds和他们的起源与动力学阿尔芬波仍然不佳据悉,日期。从动力学之间的大规模分离阿尔芬波和tds。tds可以通过电子非线性兴奋朗道与动力学阿尔芬波共振。电子被困在平行电场领域的动力学阿尔芬波,形成局部光束分布,并随之产生tds通过光束不稳定。出现如下:宏观尺度dipolarization方面首先转移离子流(动)能源动力阿尔芬波在中间规模,进一步tds通道的能量在微尺度和最终存款能源热电子的形式供暖。与dipolarization相关方面级联从大到有效地消散小尺度的磁场。

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