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首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Hot magnetospheric O~+ and cold ion behavior in magnetopause reconnection: Cluster observations
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Hot magnetospheric O~+ and cold ion behavior in magnetopause reconnection: Cluster observations

机译:磁层顶重新连接中的热磁层O〜+和冷离子行为:集群观测

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摘要

In reconnection, the presence of heavy ions like O~+ increases the ion mass density reducing the fluid’s Alfvén speed. In addition, it may modify the reconnection structure, which can also change the reconnection rate. However, because O~+ ions have a larger Larmor radii than H~+ ions at the same velocity, they may not be fully entrained in the reconnection flow and may have kinetic effects other than just increasing the mass density. In this study, for the first time, the ion velocity distribution functions of H~+ and O~+ from one magnetopause reconnection event with a strong guide field are analyzed to determine in detail the behavior of the different ion populations. We show that the hot magnetospheric O~+ ions, along with the hot magnetospheric H~+ ions almost fully participate in the reconnection exhaust flows. Finite Larmor radius effects are also apparent and control how far the ions extend on the magnetosheath side. Ion signatures consistent with heating after being picked up in the reconnection exhaust flow are observed in the H~+ and O~+ distribution functions. The dynamics of the cold magnetospheric ions depends on where they enter the reconnection region. If they enter the reconnection region at the downstream separatrix, they will be taken away by the magnetic field in an adiabatic way as analyzed by Drake et al. (2009a); if they enter close to the diffusion region, they behave as pick-up ions.
机译:重新连接时,重离子(如O〜+)的存在会增加离子质量密度,从而降低流体的Alfvén速度。另外,它可以修改重新连接结构,这也可以更改重新连接速率。但是,由于O〜+离子在相同速度下具有比H〜+离子更大的拉莫尔半径,因此它们可能不会完全夹带在重连流中,并且可能具有动力学效果,而不仅仅是增加质量密度。在本研究中,首次分析了一个强磁场致磁停药再连接事件中H〜+和O〜+的离子速度分布函数,以详细确定不同离子种群的行为。我们表明,热的磁层O〜+离子与热的磁层H〜+离子几乎完全参与了重新连接的排气流。有限的拉莫尔半径效应也很明显,可以控制离子在磁石表面延伸的距离。在H〜+和O〜+分布函数中观察到与重新连接的排气流中吸收后的加热相符的离子特征。冷磁层离子的动力学取决于它们进入重新连接区域的位置。如果它们进入下游隔膜的重新连接区域,它们将以绝热的方式被磁场带走,正如Drake等人分析的那样。 (2009a);如果它们进入扩散区附近,则它们表现为吸收离子。

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