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首页> 外文期刊>Annales Geophysicae >The relationship of thermospheric density anomaly with electron temperature, small-scale FAC, and ion up-flow in the cusp region, as observed by CHAMP and DMSP satellites
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The relationship of thermospheric density anomaly with electron temperature, small-scale FAC, and ion up-flow in the cusp region, as observed by CHAMP and DMSP satellites

机译:CHAMP和DMSP卫星观测到的热层密度异常与电子温度,小规模FAC和尖端区域离子上流的关系

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摘要

We present in a statistical study a comparison of thermospheric mass density enhancements (ρ_(rel)) with electron temperature (T_e), small-scale field-aligned currents (SSFACs), and vertical ion velocity (V_z) at high latitudes around noon magnetic local time (MLT). Satellite data from CHAMP (CHAllenging Minisatellite Payload) and DMSP (Defense Meteorological Satellite Program) sampling the Northern Hemisphere during the years 2002-2005 are used. In a first step we investigate the distribution of the measured quantities in a magnetic latitude (MLat) versus MLT frame. All considered variables exhibit prominent peak amplitudes in the cusp region. A superposed epoch analysis was performed to examine causal relationship between the quantities. The occurrence of a thermospheric relative mass density anomaly, ρ_(rel) > 1.2, in the cusp region is defining an event. The location of the density peak is taken as a reference latitude (A MLat = 0°). Interestingly, all the considered quantities, SSFACs, T_e, and V_z are co-located with the density anomaly. The amplitudes of the peaks exhibit different characters of seasonal variation. The average relative density enhancement of the more prominent density peaks considered in this study amounts to 1.33 during all seasons. As expected, SSFACs are largest in summer with average amplitudes equal to 2.56 μAm~2, decaying to 2.00μAm~2 in winter. The event related enhancements of T_e and _z are both largest in winter (ΔT_e = 730 K, V_z= 136ms~(-1)) and smallest in summer (ΔT_e = 377 K, V_z = 57 ms~(-1). Based on the similarity of the seasonal behaviour we suggest a close relationship between these two quantities. A correlation analysis supports a linear relation with a high coefficient greater than or equal to 0.93, irrespective of season. Our preferred explanation is that dayside reconnection fuels Joule heating of the thermosphere causing air upwelling and at the same time heating of the electron gas that pulls up ions along affected flux tubes.
机译:在一项统计研究中,我们比较了中纬度磁场周围高纬度地区的热层质量密度增强(ρ_(rel))与电子温度(T_e),小尺度场对准电流(SSFACs)和垂直离子速度(V_z)的比较当地时间(MLT)。使用了从2002年至2005年采样的北半球CHAMP(具有挑战性的微型卫星有效载荷)和DMSP(国防气象卫星计划)的卫星数据。在第一步中,我们研究了磁纬度(MLat)与MLT框架中测量量的分布。所有考虑的变量都在尖点区域显示出明显的峰值幅度。进行了叠加时代分析,以检验数量之间的因果关系。在尖端区域发生热圈相对质量密度异常ρ_(rel)> 1.2,是一个事件。密度峰的位置被视为参考纬度(A MLat = 0°)。有趣的是,所有考虑的量SSFAC,T_e和V_z与密度异常共处一地。峰值的幅度表现出不同的季节性变化特征。在所有研究中,本研究中所考虑的更为突出的密度峰的平均相对密度提高为1.33。不出所料,SSFAC在夏季最大,平均振幅等于2.56μAm〜2,在冬季衰减至2.00μAm〜2。与事件相关的T_e和_z增强在冬季(ΔT_e= 730 K,V_z = 136ms〜(-1))最大,在夏季(ΔT_e= 377 K,V_z = 57 ms〜(-1)最小。我们建议这两个量之间存在密切关系,相关性分析支持的线性关系的高系数大于或等于0.93(与季节无关)。我们的首选解释是,日间重新连接会加剧焦耳加热热球引起空气上升,同时加热电子气,沿受影响的通量管拉起离子。

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