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低纬度电离层电子浓度午夜塌陷研究进展

龚韵,  陈鑫坤,  马铮,  张绍东

龚韵, 陈鑫坤, 马铮, 张绍东. 低纬度电离层电子浓度午夜塌陷研究进展[J]. 空间科学学报. doi: 10.11728/cjss2026.05.2026-0027
引用本文: 龚韵, 陈鑫坤, 马铮, 张绍东. 低纬度电离层电子浓度午夜塌陷研究进展[J]. 空间科学学报. doi: 10.11728/cjss2026.05.2026-0027
GONG Yun, CHEN Xinkun, MA Zheng, ZHANG Shaodong. Recent Rresearch Progress in Low-latitude Ionospheric Midnight Collapse of Electron Density (in Chinese). Chinese Journal of Space Science, 2026, 46(5): 1-10 doi: 10.11728/cjss2026.05.2026-0027
Citation: GONG Yun, CHEN Xinkun, MA Zheng, ZHANG Shaodong. Recent Rresearch Progress in Low-latitude Ionospheric Midnight Collapse of Electron Density (in Chinese). Chinese Journal of Space Science, 2026, 46(5): 1-10 doi: 10.11728/cjss2026.05.2026-0027

低纬度电离层电子浓度午夜塌陷研究进展

doi: 10.11728/cjss2026.05.2026-0027 cstr: 32142.14.cjss.2026-0027
基金项目: 国家自然科学基金项目(42374192)和中央高校基本科研业务费专项资金项目(2042026kf0074)共同资助
详细信息
    通讯作者:
    • 龚韵 男, 1983年12月出生于湖北省武汉市, 现为武汉大学地球与空间科学技术学院教授、博士生导师, 主要从事中高层大气与电离层耦合机理、无线电雷达自主研制及应用研究. E-mail: yun.gong@whu.edu.cn
    • 张绍东 男, 1972年10月出生于湖北省黄石市, 现为贵州师范大学校长, 武汉大学地球与空间科学技术学院教授、博士生导师, 主要从事中高层大气探测技术、实验观测和数值模拟研究. E-mail: zsd@whu.edu.cn
  • 中图分类号: P352

Recent Rresearch Progress in Low-latitude Ionospheric Midnight Collapse of Electron Density

  • 摘要: 低纬度电离层午夜塌陷是夜间电离层电子浓度演变中一种典型的结构性变化, 表征了夜间电离层离子垂直输运及其动力学调制作用. 自该现象被观测以来, 围绕其形态特征与物理机制开展了大量研究, 相关工作采用地基雷达观测、卫星观测资料以及数值模拟等多种研究方法. 本文系统回顾了数十年来低纬度电离层午夜塌陷的研究进展, 重点总结其在不同季节、不同地磁活动水平下的主要形态特征; 围绕其物理机制, 着重讨论离子垂直漂移速度在午夜塌陷形成与演化中的主导作用, 并进一步分析影响离子垂直漂移变化的关键因素. 在此基础上, 结合当前观测与理论研究进展, 对午夜塌陷及相关夜间电离层动力学过程的未来研究方向进行展望.

     

  • 图  1  (a) 2011年8月16日16:00 LT至8月17日06:00 LT期间阿雷西博非相干散射雷达观测到的电子密度的高度–时间分布, 虚线框标示夜间出现的两次典型午夜塌陷过程. (b) 同一时段F区峰值电子密度(NmF2)及其对应峰值高度(hmF2)的时间演变, 用虚线框标出与(a)中对应的午夜塌陷阶段 (修改自文献[2])

    Figure  1.  (a) Height-time distribution of electron density observed by the Arecibo incoherent scatter radar from 16:00 LT on 16 August to 06:00 LT on 17 August 2011, illustrating two representative midnight collapse events highlighted by dashed boxes. (b) Temporal evolution of the F-region peak electron density (NmF2) and the corresponding peak height (hmF2) during the same interval, with dashed boxes indicating the corresponding collapse phases shown in panel (a) (modified from Ref. [2])

    图  2  一次塌陷的统计特征. (a)持续时间, (b)塌陷幅度, (c)起始时间以, (d)起始高度 (修改自文献[2])

    Figure  2.  Statistical distributions characterizing the first midnight collapse (a) Duration, (b) Collapse magnitude, (c) Onset time, (d) Initial altitude (modified from Ref. [2])

    图  3  不同季节条件下一次午夜塌陷统计特征. (a)持续时间, (b)塌陷幅度, (c)起始时间, (d)起始高度 (修改自文献[2])

    Figure  3.  Comparison of the statistical characteristics of the first midnight collapse under different seasonal conditions.(a) Duration, (b) Collapse magnitude, (c) Onset time, (d) Initial altitude (modified from Ref. [2])

    图  4  二次塌陷的统计特征. (a)持续时间, (b)塌陷幅度, (c)起始时间, (d)起始高度 (修改自文献[2])

    Figure  4.  Statistical properties of the second midnight collapse. (a) Duration, (b) Collapse magnitude, (c) Onset time, (d) Initial altitude (modified from Ref. [2])

    图  5  不同季节条件下二次午夜塌陷统计特征. (a)持续时间, (b)塌陷幅度, (c)起始时间, (d)起始高度 (修改自文献[2])

    Figure  5.  Seasonal comparison of the statistical characteristics of the second midnight collapse. (a) Duration, (b) Collapse magnitude, (c) Onset time, (d) Initial altitude (modified from Ref. [2])

    图  6  阿雷西博地区2015年3月17日16:00 LT至3月18日12:00 LT期间, 在380 km高度处离子垂直飘移速度及分量随时间的变化情况 (修改自文献[31])

    Figure  6.  Temporal variations in the ion vertical drift velocity and its components at 380 km over the Arecibo region from 16:00 LT on 17 March to 12:00 LT on 18 March 2015 (modified from Ref. [31])

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  • 收稿日期:  2026-01-31
  • 修回日期:  2026-05-10
  • 网络出版日期:  2026-05-20

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