首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Ion gyroradius effects on particle trapping in kinetic Alfvén waves along auroral field lines
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Ion gyroradius effects on particle trapping in kinetic Alfvén waves along auroral field lines

机译:对粒子捕获离子回转半径的影响动力学阿尔芬波沿着极光电场线

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In this study, a 2-D self-consistent hybrid gyrofluid-kinetic electron model is used to investigate Alfvén wave propagation along dipolar magnetic field lines for a range of ion to electron temperature ratios. The focus of the investigation is on understanding the role of these effects on electron trapping in kinetic Alfvén waves sourced in the plasma sheet and the role of this trapping in contributing to the overall electron energization at the ionosphere. This work also builds on our previous effort by considering a similar system in the limit of fixed initial parallel current, rather than fixed initial perpendicular electric field. It is found that the effects of particle trapping are strongest in the cold ion limit and the kinetic Alfvén wave is able to carry trapped electrons a large distance along the field line yielding a relatively large net energization of the trapped electron population as the phase speed of the wave is increased. However, as the ion temperature is increased, the ability of the kinetic Alfvén wave to carry and energize trapped electrons is reduced by more significant wave energy dispersion perpendicular to the ambient magnetic field which reduces the amplitude of the wave. This reduction of wave amplitude in turn reduces both the parallel current and the extent of the high-energy tails evident in the energized electron populations at the ionospheric boundary (which may serve to explain the limited extent of the broadband electron energization seen in observations). Even in the cold ion limit, trapping effects in kinetic Alfvén waves lead to only modest electron energization for the parameters considered (on the order of tens of eV) and the primary energization of electrons to keV levels coincides with the arrival of the wave at the ionospheric boundary.
机译:在这项研究中,一个二维自洽的混合体gyrofluid-kinetic电子模型研究阿尔芬波传播以及偶极磁场线的离子电子温度比率。调查是在理解的作用这些影响在动能电子捕获阿尔芬波在等离子体单和采购这陷阱导致的角色整体在电离层电子激发。这项工作也基于我们之前的努力考虑一个类似的系统的限制固定初始平行电流,而不是固定的最初的垂直电场。粒子捕获的影响最强的冷离子限制和动能阿尔芬波能够携带被困电子大场线的距离相对大的净通电困电子人口的相速度波增加。温度增加,的能力动力学阿尔芬波和激励电子是减少更多的有效波能量色散垂直于环境磁场的振幅降低波。减少平行电流和程度高能尾巴明显的活力电子的数量在电离层边界(可能解释的程度有限宽带电子激发的观察)。捕获动力学阿尔芬波导致的影响只有适度的电子激发的参数(数万的顺序电动汽车)和主要的电子激发keV水平恰逢浪潮的到来在电离层边界。

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