首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Separation of spatial and temporal structure of auroral particle precipitation
【24h】

Separation of spatial and temporal structure of auroral particle precipitation

机译:时空结构的分离极光粒子沉降

获取原文
获取原文并翻译 | 示例
           

摘要

Knowledge of the dominant temporal and spatial scales of auroral features is instrumental in understanding the various mechanisms responsible for auroral particle precipitation. Single spacecraft data always suffer from temporal/spatial ambiguity. In an effort to separate the temporal and spatial variations of the aurora, we use electron and ion precipitation data from two co-orbiting satellites, F6 and F8 of the Defense Meteorological Satellite Program (DMSP). The two spacecraft have almost identical polar orbits with a small difference in period. As a result the time difference between the two measurements varies with time. We use two statistical tools in order to determine the most probable lifetimes and spatial dimensions of the prevalent auroral features. The first tool is cross-correlation analysis between the magnetic latitude series of electron and ion, number and energy fluxes measured by the two DMSP spacecraft. As one spacecraft overtakes the other, the variable time lag between the two measurements results in different cross-correlation of the two series. We explore the dependence of this variation on the time lag between the satellites. We find that the electron precipitation exhibits a decreasing correlation between the two spacecraft with increasing time lag, whereas there is only a small similar effect for the ion precipitation data. The second statistical tool is cross-spectral analysis, for which we compute the so-called coherence function as a function of frequency (or inverse wavelength) and hence size of the auroral features. The coherence function is a measure of the stability of auroral features of different sizes. We investigate its variation as a function of the time separation between the two measurements. We show that the coherence function of both electrons and ions remains high for up to 1.5 min spacecraft separations for all features larger than about 100 km in width. For smaller features the coherence is lower even for time lags of a few seconds. The results are discussed in the context of characteristic temporal and spatial auroral scales deduced from complementary studies and expected from theory.
机译:的知识占主导地位的时间和空间极光的尺度特性有助于理解各种机制负责极光粒子沉降。航天器的数据总是遭受时间/空间歧义。独立的时间和空间变化极光,我们使用电子和离子沉淀数据来自两个一起卫星,F6和F8国防气象卫星计划(DMSP)。极地轨道的细微差别。因此两者之间的时间差测量随时间。为了确定最统计工具可能的寿命和空间维度普遍的极光的特性。磁场之间的互相关分析纬度一系列电子和离子,和数量由两个DMSP能量通量测量宇宙飞船。两者之间的变量时滞测量的结果在不同的这两个系列的互相关。这个变化的依赖时滞在卫星之间。降水展览减少相关两个航天器之间随着时间增加滞后,而只有一个小相似的效果离子沉淀的数据。统计工具是交叉谱分析,我们计算所谓的相干函数作为频率的函数(或逆波长),因此极光的大小特性。不同的极光的稳定性特征大小。两者之间的时间分离测量。电子和离子居高不下了1.5分钟航天器分离特性大于100公里宽。特征一致性较低甚至时间落后的几秒钟。在时间和特征从互补空间极光尺度推导从理论研究和预期。

著录项

相似文献

  • 外文文献
  • 中文文献
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号