The Response of Auroral-Oval Waves to CIR-Driven Recurrent Storms: FY-3E/ACMag Observations

Author:

Liu Zhi-Yang1ORCID,Zong Wei-Guo2,Zong Qiu-Gang134,Wang Jin-Song2,Yu Xiang-Qian1ORCID,Wang Yong-Fu1,Zou Hong1,Fu Sui-Yan1,Yue Chao1,Hu Ze-Jun4ORCID,Liu Jian-Jun4ORCID

Affiliation:

1. Institute of Space Physics and Applied Technology, Peking University, Beijing 100871, China

2. Key Laboratory of Space Weather, National Center for Space Weather, China Meteorological Administration, Beijing 100081, China

3. Key Laboratory of Solar Activity and Space Weather, National Space Science Center, Chinese Academy of Sciences, Beijing 100190, China

4. MNR Key Laboratory for Polar Science, Polar Research Institute of China, Shanghai 200136, China

Abstract

Alfven-branch waves provide an efficient means for transporting energy into the auroral oval. Here, we report observations of these waves obtained by the Fengyun-3E (FY-3E)/ACMag instruments, which are designed to detect three-dimensional AC magnetic fields in the 0.05–25 Hz band. The observations suggest that broadband waves are a permanent feature of the auroral oval, although their amplitude and locations vary with the global state of the magnetosphere. We primarily focus on the data obtained from 10 July 2021 to 26 August 2021, during which a series of recurrent storms driven by solar wind corotating interaction regions (CIRs) occurred. Analysis of the observations shows that the auroral-oval waves grow in amplitude (1–3 orders of magnitude) and shift to lower latitude (∼10°) immediately following the decrease in the SYM-H index in each storm. Further investigation reveals the response of the auroral-oval waves has a time scale equal to or less than FY-3E’s effective revisiting time, which is about 45 min. The observations presented in this paper confirm that the FY-3E/ACMag instruments provide a high-resolution monitor of the auroral-oval waves and could further our understanding of auroral physics.

Funder

Major Project of Chinese National Programs for Fundamental Research and Development

National Natural Science Foundation of China

China Space Agency project

China National Space Administration project

National Key R&D Program of China

Publisher

MDPI AG

Subject

General Physics and Astronomy

Reference41 articles.

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