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首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Exploring the influence of ionospheric O~+ outflow on magnetospheric dynamics: The effect of outflow intensity
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Exploring the influence of ionospheric O~+ outflow on magnetospheric dynamics: The effect of outflow intensity

机译:探索电离层O ~ +流出的影响在磁性层的动态:流出的影响强度

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The ionospheric O~+ outflow varies dramatically during geomagnetic activities, but the influence of its initial characteristics on the magnetospheric dynamics has not been well established. To expand a previous study on the impact of ionospheric heavy ions outflow originating from different source regions on the magnetotail dynamics and dayside reconnection rate, this study conducts two idealized numerical experiments with different O~+ outflow densities to examine the consequent change in the magnetosphere system, especially on the solar wind-magnetosphere coupling efficiency. Results indicate that a larger O~+ outflow is capable of triggering the Kelvin-Helmholtz instability (KHI) on the magnetopause flanks. The subsequent surface waves enhance the solar wind-magnetosphere coupling efficiency by transmitting more solar wind energy into the magnetosphere-ionosphere system, increasing the cross polar cap potential index. This index is initially reduced after the ionospheric mass loading owing to the direct depression in the dayside reconnection rate as commonly reported from earlier literature. The above KHI is generated under steady state solar wind conditions, suggesting that besides the commonly recognized cause, the elevated solar wind speed, ionospheric heavy ions outflow is another potential factor in disturbing the boundary by enhancing the mass density near the magnetopause and thus lowering the threshold for generating KHI. During storms, the increased ionospheric mass source causes an increased probability of KHI, which allows more solar wind plasma into the magnetosphere. This implies there is a possibility of even further nonlinear coupling between the magnetosphere and solar wind. Key Points The impact of different ionospheric O~+ outflow density is investigatedA large outflow could trigger Kelvin-Helmholtz instabilityIncrease SW-M coupling efficiency despite reduced dayside reconnection rate
机译:电离层O ~ +流出发生巨大的变化在地磁活动,但影响力在最初的特征磁性层的动态还没有好建立。电离层的离子外流的影响来自不同地区的来源磁尾动力学和的光面重新连接率,本研究进行了两个理想化的数值实验用不同O ~ +流出密度检查结果的变化磁气圈系统,特别是在太阳wind-magnetosphere耦合效率。表明一个更大的O ~ +外流的能力触发Kelvin-Helmholtz不稳定(地块)在磁层。表面波提高太阳能wind-magnetosphere耦合效率的传送更多太阳能风能magnetosphere-ionosphere系统,增加了交叉极冠潜力指数。电离层后最初降低质量加载由于直接抑郁一般的光面重新连接速度和报道从早期的文学。稳定状态下生成的太阳风一般条件下,表明除了确认原因,太阳风速度升高,电离层的离子外流是另一回事令人不安的边界的潜在因素提高磁层附近的质量密度,从而降低了生成的门槛川崎重工。质量源引起的概率增加川崎,允许更多的太阳风等离子体磁气圈。进一步非线性耦合的可能性在磁场和太阳风之间。分不同的电离层O ~ +的影响流出密度是investigatedA大量外流可能引发Kelvin-HelmholtzinstabilityIncrease SW-M耦合效率尽管减少的光面重联率

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