中纬度地区电离层不规则性与电离层电动力耦合研究进展

IF 2.9 3区 地球科学
Yi Liu, Chen Zhou, Tong Xu, Qiong Tang, ZhongXin Deng, GuanYi Chen, ZhuangKai Wang
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引用次数: 10

摘要

本文简要回顾了中纬度E和F区发生的电离层不规则现象。零星E(ES)是一种常见的电离层不规则现象,最早出现在E层。ES主要出现在夏季半球的白天,主要由中层和低热层(MLT)区域的中性风切变形成。中纬度地区的甚高频雷达也观测到E区域的场对准不规则性(FAI)。FAI经常发生在夏季半球日落后,E区FAI回波的频谱特征表明,2型不规则性在夜间电离层中占主导地位。ES和E区FAI之间的密切关系意味着ES可能是夜间电离层中E区FAI的一个可能来源。强烈的中性风切变、陡峭的ES等离子体密度梯度和极化电场是影响E区FAI形成的重要因素。在中纬度地区,包括电离层探测器、甚高频雷达、全球定位系统(GPS)站和全天空光学图像在内的联合观测实验揭示了夜间F区不同尺度电离层不规则性的强烈联系,如扩散F(SF)、中尺度旅行电离层扰动(MSTID)和F区FAI。观测表明,不同尺度的电离层不规则性通常归因于Perkins不稳定性和随后激发的梯度漂移不稳定性。当F区底部存在陡峭的等离子体密度梯度时,夜间MSTID可以通过非线性级联过程进一步演化为小尺度结构。此外,由于中纬度电离层中磁力线的显著倾角和等势性,电离层电动耦合过程,包括电离层E‐F耦合和半球间耦合对电离层不规则性产生的影响变得更加突出。极化电场可以映射到不同的电离层区域,激发等离子体不稳定性,形成电离层的不规则性。然而,极化电场的映射效率取决于电离层背景和电场的空间尺度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Review of ionospheric irregularities and ionospheric electrodynamic coupling in the middle latitude region

Review of ionospheric irregularities and ionospheric electrodynamic coupling in the middle latitude region

This paper briefly reviews ionospheric irregularities that occur in the E and F regions at mid-latitudes. Sporadic E (ES) is a common ionospheric irregularity phenomenon that is first noticed in the E layer. ES mainly appears during daytime in summer hemispheres, and is formed primarily from neutral wind shear in the mesosphere and lower thermosphere (MLT) region. Field-aligned irregularity (FAI) in the E region is also observed by Very High Frequency (VHF) radar in mid-latitude regions. FAI frequently occurs after sunset in summer hemispheres, and spectrum features of E region FAI echoes suggest that type-2 irregularity is dominant in the nighttime ionosphere. A close relationship between ES and E region FAI implies that ES may be a possible source of E region FAI in the nighttime ionosphere. Strong neutral wind shear, steep ES plasma density gradient, and a polarized electric field are the significant factors affecting the formation of E region FAI. At mid-latitudes, joint observational experiments including ionosonde, VHF radar, Global Positioning System (GPS) stations, and all-sky optical images have revealed strong connections across different scales of ionospheric irregularities in the nighttime F region, such as spread F (SF), medium-scale traveling ionospheric disturbances (MSTID), and F region FAI. Observations suggest that different scales of ionospheric irregularities are generally attributed to the Perkins instability and subsequently excited gradient drift instability. Nighttime MSTID can further evolve into small-scale structures through a nonlinear cascade process when a steep plasma density gradient exists at the bottom of the F region. In addition, the effect of ionospheric electrodynamic coupling processes, including ionospheric E-F coupling and inter-hemispheric coupling on the generation of ionospheric irregularities, becomes more prominent due to the significant dip angle and equipotentiality of magnetic field lines in the mid-latitude ionosphere. Polarized electric fields can map to different ionospheric regions and excite plasma instabilities which form ionospheric irregularities. Nevertheless, the mapping efficiency of a polarized electric field depends on the ionospheric background and spatial scale of the field.

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来源期刊
Earth and Planetary Physics
Earth and Planetary Physics GEOSCIENCES, MULTIDISCIPLINARY-
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17.20%
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