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首页> 外文期刊>Journal of atmospheric and solar-terrestrial physics >Large-scale traveling atmospheric disturbances (LSTADs) in the thermosphere inferred from CHAMP, GRACE, and SETA accelerometer data
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Large-scale traveling atmospheric disturbances (LSTADs) in the thermosphere inferred from CHAMP, GRACE, and SETA accelerometer data

机译:根据CHAMP,GRACE和SETA加速度计数据推断出的热圈中的大规模旅行大气干扰(LSTAD)

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摘要

Densities derived from accelerometer measurements on the GRACE, CHAMP, and Air Force/SETA satellites near 490, 390, and 220. km, respectively, are used to elucidate global-scale characteristics of traveling atmospheric disturbances (TADs). Several characteristics elucidated in numerical simulations are confirmed in this study, namely: (1) propagation speeds increase from the lower thermosphere to the upper thermosphere; (2) propagation to the equator and even into the opposite hemisphere can occur; (3) greater attenuation of TADs occurs during daytime and at higher levels of solar activity (i.e., more wave activity during nighttime and solar minimum), presumably due to the greater influence of ion drag. In addition, we find that the occurrence of significant TAD activity emanating from the auroral regions does not reflect a clear relation with the level of planetary magnetic activity as measured by Kp. There is also evidence of waves originating in the tropics, presumably due to convective sources; to some extent this may contribute to the Kp and solar flux relationships noted above. Further elucidation of local time, season, and altitude dependences of TAD propagation characteristics may be forthcoming from density measurements from the GOCE and Swarm missions.
机译:分别从GRACE,CHAMP和空军/ SETA卫星附近490、390和220. km的加速度计测量结果得出的密度被用于阐明旅行大气扰动(TAD)的全球尺度特征。这项研究证实了数值模拟中阐明的几个特征,即:(1)从较低的热圈到较高的热圈的传播速度增加; (2)可能传播到赤道,甚至传播到相反的半球; (3)TAD的衰减在白天和较高的太阳活动水平下发生(即,在夜间和最低太阳活动期间有更多的波浪活动),这可能是由于离子阻力的影响较大。此外,我们发现,从极光区域发出的重要TAD活性的发生并没有反映与以Kp衡量的行星磁活动水平的明确关系。也有证据表明海浪起源于热带,大概是由于对流源造成的。在某种程度上,这可能有助于上述Kp和太阳通量的关系。通过GOCE和Swarm任务的密度测量可能会进一步阐明TAD传播特征的当地时间,季节和高度依赖性。

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