Simulation of Dawn‐To‐Dusk Electric Field in the Jovian Inner Magnetosphere via Region 2‐Like Field‐Aligned Current

Author:

Nakamura Yuki123ORCID,Terada Koichiro1,Tao Chihiro4ORCID,Terada Naoki1,Kasaba Yasumasa1ORCID,Leblanc François2ORCID,Kita Hajime5,Nakamizo Aoi4ORCID,Yoshikawa Akimasa67ORCID,Ohtani Shinichi8ORCID,Tsuchiya Fuminori1ORCID,Kagitani Masato1ORCID,Sakanoi Takeshi1ORCID,Murakami Go9ORCID,Yoshioka Kazuo10ORCID,Kimura Tomoki11ORCID,Yamazaki Atsushi9ORCID,Yoshikawa Ichiro10ORCID

Affiliation:

1. Graduate School of Science Tohoku University Sendai Japan

2. LATMOS/CNRS Sorbonne Université Paris France

3. Graduate School of Science The University of Tokyo Tokyo Japan

4. Space Environment Laboratory National Institute of Information and Communications Technology (NICT) Koganei Japan

5. Tohoku Institute of Technology Sendai Japan

6. International Research Center for Space and Planetary Environmental Science Kyusyu University Fukuoka Japan

7. Department of Earth and Planetary Science Kyushu University Fukuoka Japan

8. The Johns Hopkins University Applied Physics Laboratory Laurel MD USA

9. Institute of Space and Astronautical Science Japan Aerospace Exploration Agency Sagamihara Japan

10. Graduate School of Frontier Sciences The University of Tokyo Kashiwa Japan

11. Tokyo University of Science Tokyo Japan

Abstract

AbstractThe presence of the dawn‐to‐dusk electric field of about 4 mV/m in the Jovian inner magnetosphere and its response to the enhancement of the solar wind dynamic pressure are still a mystery of the rotation‐dominated Jovian magnetosphere. Previous studies have suggested that magnetosphere‐ionosphere (M‐I) coupling via Region 2‐like (R2‐like) field‐aligned current (FAC) could be the origin of the Jovian dawn‐to‐dusk electric field. This study investigates whether the dawn‐to‐dusk electric field is formed from this scenario by using a Jovian ionosphere model and a two‐dimensional ionospheric potential solver. Our results show that the dawn‐dusk asymmetry in the ionospheric potential form even at middle latitudes and that the dawn‐to‐dusk electric field is induced in the inner magnetosphere if the electric potential is mapped to the magnetospheric equatorial plane. Around the Io orbit, the calculated electric field strength for the ionosphere without meteoroid influx is too large, 200 mV/m at dawn and 88 mV/m at dusk. One of the solutions is to consider long‐lived meteoric ions in the Jovian ionosphere, which reduce the electric field strength to 15 mV/m at dawn and 12 mV/m at dusk. The model also shows that the electric field strength increases with the intensity of R2‐like FAC, consistent with its response to the solar wind dynamic pressure observed by the Hisaki satellite.

Funder

Tohoku University

Publisher

American Geophysical Union (AGU)

Subject

Space and Planetary Science,Geophysics

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