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首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Magnetosphere‐ionosphere coupling in Jupiter’s middle magnetosphere: Computations including a self‐consistent current sheet magnetic field model
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Magnetosphere‐ionosphere coupling in Jupiter’s middle magnetosphere: Computations including a self‐consistent current sheet magnetic field model

机译:木星中磁层的磁层-电离层耦合:包括自一致电流薄层磁场模型在内的计算

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In this paper we consider the effect of a self‐consistently computed magnetodisc field structure on the magnetosphere‐ionosphere coupling current system at Jupiter. We find that the azimuthal current intensity, and thus the stretching of the magnetic field lines, is dependent on the magnetosphere‐ionosphere coupling current system parameters, i.e., the ionospheric Pedersen conductivity and iogenic plasma mass outflow rate. Overall, however, the equatorial magnetic field profiles obtained are similar in the inner region to those used previously, such that the currents are of the same order as previous solutions obtained using a fixed empirical equatorial field strength model, although the outer fringing field of the current disc acts to reverse the field‐aligned current in the outer region. We also find that while the azimuthal current in the inner region is dominated by hot plasma pressure, as is generally held to be the case for Jupiter, the use of a realistic plasma angular velocity profile actually results in the centrifugal current becoming dominant in the outer magnetosphere. In addition, despite the dependence of the intensity of the azimuthal current on the magnetosphere‐ionosphere coupling current system parameters, the location of the peak field‐aligned current in the equatorial plane also varies, such that the ionospheric location remains roughly constant. It is thus found that significant changes to the mass density of the iogenic plasma disc are required to explain the variation in the main oval location observed using the Hubble Space Telescope.
机译:在本文中,我们考虑了在木星上自洽计算的磁极场结构对磁层-电离层耦合电流系统的影响。我们发现方位电流强度以及磁场线的延伸取决于磁层-电离层耦合电流系统参数,即电离层Pedersen电导率和离子源等离子体质量流出速率。但是,总的来说,尽管内部磁场的外部边缘场与外部磁场相似,但在内部区域获得的赤道磁场分布与以前使用的类似,因此电流与使用固定经验赤道场强度模型获得的先前解的阶数相同。电流盘的作用是使外部区域中的磁场对准电流反向。我们还发现,虽然内部区域的方位电流主要由热等离子体压力控制,如木星通常认为的那样,但使​​用实际的等离子体角速度曲线实际上会导致离心电流在外部区域占主导地位磁层。此外,尽管方位电流的强度取决于磁层-电离层耦合电流系统参数,但在赤道平面内峰值场对准电流的位置也有所变化,因此电离层位置大致保持恒定。因此,发现需要对同质等离子体盘的质量密度进行重大改变,以解释使用哈勃太空望远镜观察到的主要椭圆形位置的变化。

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