P047-0014
The magnetic flux transport along the -ESW direction in the magnetotails on Mars and Venus

Friday, 11 December 2020
Poster
Lihui Chai1, James A Slavin2, Yong Wei1, Weixing Wan3, Charles Bowers2, Gina A DiBraccio4, Edward Dubinin5, Markus Fraenz6, Willi Exner7, Uwe Motschmann8, Kun Li9,10, Jun Cui11, Moritz Feyerabend12 and Tielong Zhang13, (1)Institute of Geology and Geophysics, Chinese Academy of Sciences, Beijing, China, (2)University of Michigan Ann Arbor, Department of Climate and Space Sciences and Engineering, Ann Arbor, MI, United States, (3)University of the Chinese Academy of Sciences, Beijing, China, (4)University of Michigan, Ann Arbor, MI, United States, (5)Max-Planck-Institute for Solar System Research, Goettingen, Germany, (6)Max Planck Institute for Solar System Research, Göttingen, Germany, (7)Technical University of Braunschweig, Institute for Geophysics and extraterrestrial Physics, Braunschweig, Germany, (8)TU Braunschweig, Institute of Theoretical Physics, Braunschweig, Germany, (9)Harrison City, PA, United States, (10)Sun Yat-Sen University, Guangzhou, China, (11)Sun Yat-sen University, School of Atmospheric Sciences, Zhuhai, China, (12)TU Braunschweig, Institute for Theoretical Physics, Braunschweig, Germany, (13)Space Research Institute, Graz, Austria
Abstract:
The induced magnetotails on Mars and Venus are considered to arise through the interplanetary magnetic field (IMF) draping around the planet and the solar wind deceleration due to the mass loading effect. They have very similar structures as that on Earth, two magnetic lobes of opposite radial magnetic fields and a plasma sheet in between. However, the orientation and geometry of the induced magnetotails are controlled by the IMF, not the planetary intrinsic magnetic field. In this study, we present another characteristic of the induced magnetotails on Mars and Venus with the observations of MAVEN and Venus Express. It is found that the magnetic flux in the induced magnetotails on Mars and Venus are inhomogeneous. There is more magnetic flux in the +E hemisphere than -E hemisphere. The magnetic flux is observed to transport gradually from the +E hemisphere to the -E hemisphere along the magnetotail. The magnetotail magnetic flux transport seems to be faster on Mars than that at Venus. Based on these observations, we suggest that the finite gyro-radius effect of the planetary ions that are picked up by the solar wind is responsible to the magnetic flux inhomogeneity and transport in the induced magnetotails. The role of the magnetic pressure gradient in the magnetotail will be discussed.