Anisotropic Heating and Parallel Heat Flux in Electron-only Magnetic Reconnection with Intense Guide Fields
arXiv:2406.10731 · doi:10.1017/S0022377825100548
Abstract
Electron-only reconnection is a process recently observed in the Earth's magnetosheath, where magnetic reconnection occurs at electron kinetic scales with only electrons involved. Electron-only reconnection is likely to have a significant impact on the energy conversion and dissipation of turbulence cascades at kinetic scales. This paper investigates electron-only reconnection under different intensities of strong guide fields via two-dimensional fully kinetic Particle-in-Cell (PIC) simulations, focusing on electron heating. The simulations are initialized with a force-free current sheet equilibrium under various intensities of strong guide fields. The quadrupolar structures of the out-of-plane magnetic field and asymmetric structures of density are found to become narrower in space as the guide field increases. Electron velocities are considerably larger than ion velocities, and the motion of both species is notably affected by the strength of guide fields. Similarly to previous experiments studies, electron temperature anisotropy along separatrices is observed, which is found to be mainly caused by the variations of parallel temperature. Both regions of anisotropy and parallel temperature increase/decrease along separatrices become thinner with increasing guide fields. Besides, we find a transition from a quadrupolar to a six-polar to an eight-polar structure in temperature anisotropy and parallel temperature as the guide field intensifies. Non-Maxwellian electron velocity distribution functions (EVDFs) at different locations in the three simulations are observed. Our results show that parallel electron velocity varies notably with different guide field intensities and strong parallel electron heat flux is observed.
References in corpus (8)
- On the origin of the crescent-shaped distributions observed by MMS at the magnetopause
- Non-Maxwellian electron distribution functions due to self-generated turbulence in collisionless guide-field reconnection
- Spectral properties and energy transfer at kinetic scales in collisionless plasma turbulence
- Statistical Properties of Turbulent Fluctuations Associated with Electron-only Magnetic Reconnection
- Magnetic reconnection as a mechanism to produce multiple protonpopulations and beams locally in the solar wind
- Fluid vs. kinetic magnetic reconnection with strong guide-fields
- Instabilities of collisionless current sheets revisited: the role of anisotropic heating
- Influence of ion-to-electron temperature ratio on tearing instability and resulting subion-scale turbulence in a low- collisionless plasma