Observation and Numerical Simulation of Cold Ions Energized by EMIC Waves

Author:

Kim K.‐H.1ORCID,Jun C.‐W.2ORCID,Kwon J.‐W.3ORCID,Lee J.1ORCID,Shiokawa K.2ORCID,Miyoshi Y.2ORCID,Kim E.‐H.45ORCID,Min K.6ORCID,Seough J.7ORCID,Asamura K.8ORCID,Shinohara I.8ORCID,Matsuoka A.9,Yokota S.10ORCID,Kasahara Y.11ORCID,Kasahara S.12ORCID,Hori T.2ORCID,Keika K.12ORCID,Kumamoto A.13ORCID,Tsuchiya F.13ORCID

Affiliation:

1. School of Space Research Kyung Hee University Yongin Republic of Korea

2. Institute for Space‐Earth Environmental Research Nagoya University Nagoya Japan

3. Division of Atmospheric Sciences Korea Polar Research Institute Incheon Republic of Korea

4. Princeton Plasma Physics Laboratory Princeton University Princeton NJ USA

5. Department of Physics Andrews University Berrien Springs MI USA

6. Department of Astronomy and Space Science Chungnam National University Daejeon Republic of Korea

7. Korea Astronomy and Space Science Institute Daejeon Republic of Korea

8. ISAS/JAXA Sagamihara Japan

9. Kyoto University Kyoto Japan

10. Osaka University Osaka Japan

11. Graduate School of Natural Science and Technology Kanazawa University Kanazawa Japan

12. University of Tokyo Tokyo Japan

13. Tohoku University Sendai Japan

Abstract

AbstractThis is the first report of significant energization (up to 7,000 eV) of low‐energy He+ ions, which occurred simultaneously with H‐band electromagnetic ion cyclotron (EMIC) wave activity, in a direction mostly perpendicular to the ambient magnetic field. The event was detected by the Arase satellite in the dayside plasmatrough region off the magnetic equator on 15 May 2019. The peak energy of the He+ flux enhancements is mostly above 1,000 eV. At some interval, the He+ ions are energized up to ∼7,000 eV. The H‐band waves are excited in a frequency band between the local crossover and helium gyrofrequencies and are close to a linear polarization state with weakly left‐handed or right‐handed polarization. The normal angle of the waves exhibits significant variation between 0° and 80°, indicating a non‐parallel propagation. We run a hybrid code with parameters estimated from the Arase observations to examine the He+ energization. The simulations show that cold He+ ions are energized up to more than 1,000 eV, similar to the spacecraft observations. From the analysis of the simulated wave fields and cold plasma motions, we found that the ratio of the wave frequency to He+ gyrofrequency is a primary factor for transverse energization of cold He+ ions. As a consequence of the numerical analysis, we suggest that the significant transverse energization of He+ ions observed by Arase is attributed to H‐band EMIC waves excited near the local helium gyrofrequency.

Funder

National Research Foundation of Korea

Korea Polar Research Institute

Publisher

American Geophysical Union (AGU)

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