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Formation Mechanisms of the Spring-Autumn Asymmetry of the Midlatitudinal NmF2 under Daytime Quiet Geomagnetic Conditions at Low Solar Activity

机译:低太阳能活动下白天安静地磁条件下二际NMF2春季秋季不对称的形成机制

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摘要

Formation mechanism of the spring-autumn asymmetry of the F2-layer peak electron number density of the midlatitudinal ionosphere, NmF2, under daytime quiet geomagnetic conditions at low solar activity are studied. We used the ionospheric parameters measured by the ionosonde and incoherent scatter radar at Millstone Hill on March 3, 2007, March 29, 2007, September 12, 2007, and September 18, 1984. The altitudinal profiles of the electron density and temperature were calculated for the studied conditions using a one-dimensional, nonstationary, ionosphere-plasmasphere theoretical model for middle geomagnetic latitudes. The study has shown that there are two main factors contributing to the formation of the observed spring-autumn asymmetry of NmF2: first, the spring-autumn variations of the plasma drift along the geomagnetic field due to the corresponding variations in the components of the neutral wind velocity, and, second, the difference between the composition of the neutral atmosphere under the spring and autumn conditions at the same values of the universal time and the ionospheric F2-layer peak altitude. The seasonal variations of the rate of O+(S-4) ion production, which are associated with chemical reactions with the participation of the electronically excited ions of atomic oxygen, does not significantly affect the studied NmF2 asymmetry. The difference in the degree of influence of O+(S-4) ion reactions with vibrationally excited N-2 and O-2 on NmF2 under spring and autumn conditions does not significantly change the spring-autumn asymmetry of NmF2.
机译:研究了中间离子层F2层峰值电子数密度的春季秋季不对称性的形成机制,NMF2在低太阳能活动下的日间安静的地磁条件下。我们在2007年3月29日,2007年3月29日,2007年3月29日,2007年3月29日,2007年3月29日和1984年9月18日,使用了由Ionosonde和Conshery Scains Radar测量的电离层参数。计算电子密度和温度的高度概况中间地磁纬度的一维,非营养,离子层 - Plasmasphere理论模型的研究。该研究表明,有两个主要因素有助于形成观察到的NMF2的春季秋季不对称性:第一,由于中性组件的相应变化,沿着地磁场沿着地磁场漂移的春季秋季变化风速,并且,第二,在春季和秋季条件下中性气氛的组成之间的差异在相同的通用时间和电离层F2层峰高度。与电子激发离子的原子氧的电子激发离子的参与相关的O +(S-4)离子产量的季节变化并没有显着影响所研究的NMF2不对称性。在春季和秋季条件下与振动激发的N-2和O-2对NMF2的振动激发的N-2和O-2的影响程度的差异不会显着改变NMF2的春季秋季不对称性。

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  • 来源
    《Geomagnetism and aeronomy》 |2018年第3期|共11页
  • 作者

    Pavlov A. V.; Pavlova N. M.;

  • 作者单位

    Russian Acad Sci IZMIRAN Pushkov Inst Terr Magnetism Ionosphere &

    Radio Wa Moscow 108840 Russia;

    Russian Acad Sci IZMIRAN Pushkov Inst Terr Magnetism Ionosphere &

    Radio Wa Moscow 108840 Russia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 地球物理学;
  • 关键词

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