Fuhao Qiao, Lei Li, Qi Xu, Lianghai Xie, Yiteng Zhang, Linggao Kong, Binbin Tang, Wenya Li, Xiaochen Gou, Jindong Wang, Bin Zhou, Yongyong Feng, Mats Holmström, Hayley Williamson, Xiao-Dong Wang, Aibing Zhang, Limin Wang, Taifeng Jin, Jijie Ma, Fuyu Sun, Ming Wang
When the upstream Alfvén Mach number is low, the magnetic field may play a dominant role in the solar-wind interaction with Mars, yet the resulting magnetospheric dynamics and associated energy conversion remain poorly constrained. Bulk proton acceleration reaching about 150% of the solar-wind speed is detected jointly by MAVEN, Tianwen-1, and MEX missions in the magnetosheath. The acceleration regions exhibit pronounced asymmetry between the two electric-field hemispheres, defined by the solar-wind electric field, while the shape of the adjacent magnetotail shows axial and hemispheric asymmetries. We demonstrate that the large-scale J×B force, with J denoting the electric current density and B the magnetic field, is the primary driver of acceleration and axial asymmetry. Mass loading of planetary ions introduces strong hemispheric asymmetries-features unique to unmagnetized bodies with atmospheres. Here, we reveal a pathway by which magnetic field converges and redistributes solar-wind energy, and infer that plasma acceleration under low upstream Alfvén Mach number operates not only at Earth but also at Mars and other bodies with magnetosheaths.