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首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Driving Planetary Period Oscillations From the Hall Conducting Layer of Saturn's Upper Atmosphere
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Driving Planetary Period Oscillations From the Hall Conducting Layer of Saturn's Upper Atmosphere

机译:从Hall的高层大气层的大厅导电层驱动行星周期振荡

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We develop a simple physical model of the planetary period oscillations (PPOs) observed in Saturn's magnetosphere. The model couples together flows and currents in five two-dimensional systems: an upper and lower atmospheric layer in each hemisphere, and the equatorial magnetosphere.We neglect the curved geometry of the planet and the magnetosphere but use a simple scaling argument to account for the very different sizes of the two systems.We show that it is possible to drive a PPO current system with many of the observed properties by invoking a twin vortex system in the Hall conducting layer of either hemisphere. The twin vortex system is able to generate divergent currents because our model includes a representation of the latitudinal variation of conductance. The large inertia and low Pedersen conductance of this layer of the atmosphere means that the twin vortex system and the PPO currents have a very stable rotation velocity and a very long dissipation timescale, explaining the long term persistence and stability of the PPO current systems. For a range of realistic parameters, part of the PPO current system closes through the equatorial magnetosphere, and part through the opposite hemisphere, as observed.We make predictions about the phase relationships between these closure currents that allow our model to be tested. Although the wind speeds required to produce the observed currents are implausibly large, interaction with enhanced electron density in the auroral regions reduces the necessary wind speeds to plausible values.
机译:我们开发了在土星磁层中观察到的行星周期振荡(PPO)的简单物理模型。该模型在五个二维系统中耦合在一起流动和电流:每个半球中的上部和下部大气层,赤道磁层。我们忽略了行星的弯曲几何形状和磁影,但使用简单的缩放论证来解释两种系统的大小非常不同。我们通过调用任何半球的大厅导电层中调用双涡流系统,可以通过调用双涡流系统来驱动具有许多观察性的PPO电流系统。双涡流系统能够产生发散电流,因为我们的模型包括电导延迟变化的表示。这种大气层的大惯性和低划线电导意味着双涡流系统和PPO电流具有非常稳定的旋转速度和非常长的耗散时间尺度,解释了PPO电流系统的长期持久性和稳定性。对于一系列现实参数,PPO电流系统的一部分通过赤道磁影数关闭,并且如图所示,通过相反的半球部分。我们对这些闭合电流之间的相位关系进行了预测,允许我们的模型进行测试。尽管产生观察到的电流所需的风速是可观的大,但极光区域中的电子密度增强的相互作用降低了所需的风速与合理的值。

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