Global Distribution of Electron Temperature Enhancement at Mid‐Low Latitudes Observed by DMSP F16 Satellite

Author:

Liang Jianyun12ORCID,Xu Jiyao12ORCID,Zhang Qinghe3ORCID,Liu Jing3ORCID,Zhang Yongliang4ORCID,Zhang Shun‐Rong5ORCID,Wang Xiangyu3,Xing Zanyang3ORCID,Wu Kun6ORCID

Affiliation:

1. State Key Laboratory of Space Weather National Space Science Center Chinese Academy of Sciences Beijing China

2. University of Chinese Academy of Sciences Beijing China

3. Shandong Provincial Key Laboratory of Optical Astronomy and Solar‐Terrestrial Environment Institute of Space Sciences Shandong University Weihai China

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

5. Haystack Observatory Massachusetts Institute of Technology Westford MA USA

6. High Altitude Observatory National Center for Atmospheric Research Boulder CO USA

Abstract

AbstractThis study investigates the global distribution of electron temperature enhancement observed by Defense Meteorological Satellite Program F16 satellite and its dependence on the season and solar activity for the solar maximum (2014) and minimum (2018) years during geomagnetic quiet times (maximum per day ap <10). Electron temperature enhancements occurred mainly over the North American‐Atlantic (260°–360°E) and Eurasia (0°–160°E) (Southern Oceania (80°–280°E)) sector in the Northern (Southern) Hemisphere and are prominent in the winter hemispheres and solar maximum year. They have obvious longitude characteristics. Interestingly, they could extend to geomagnetic equatorial regions in the North American‐Atlantic sector from high to low latitudes in the December Solstice, further crossed the magnetic equator, and merged into the Southern Hemisphere in 2014, where the maximum temperature reached ∼3500 K. Our analysis indicates that low‐energy electrons (<100 eV) associated with photoelectron from the conjugate sunlit hemisphere, can contribute to these enhancements. Furthermore, the local geomagnetic declination, magnetic equator position, and terminator position at magnetic conjugate points together can impact the global distribution of photoelectrons of different energies and therefore the electron temperature enhancement distribution. Other processes (including local electron density variation) may play certain roles as well.

Publisher

American Geophysical Union (AGU)

Subject

Space and Planetary Science,Geophysics

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