solar physics

Observational Evidence for Counter-helicity Magnetic Reconnection in a Solar Eruption

arXiv:2607.14043

summary

The paper presents multiwavelength observations and magnetic field modeling of an M7.0 solar flare, showing that reconnection between a low‑lying positive‑helicity core field and an overlying opposite‑helicity system likely triggered the eruption.

Abstract

Magnetic reconnection between coronal magnetic systems carrying opposite self-helicity may play a role in solar eruptions, but observational evidence remains limited. We investigate an M7.0 flare in NOAA Active Region 13615 on 2024 March 28 using multiwavelength observations and nonlinear force-free field extrapolations. The reconstructed coronal field reveals a low-lying positive-helicity core field beneath an overlying magnetic system of opposite sign. During the eruption, the footpoint connectivity of these two magnetic systems changes markedly: field lines rooted in the western footpoint region change from positive to negative helicity, and the positive-helicity domain is substantially reduced. These changes are accompanied by a remote chromospheric brightening, intermittent EUV stripe-like brightenings extending from the source region toward the remote chromospheric brightening, the subsequent formation of large-scale coronal loops, and a weak outer hard X-ray source located at a footpoint of the core field. Together, these results suggest that the eruption was closely associated with reconnection between the core field and the overlying counter-helicity system, providing observational evidence that counter-helicity reconnection can contribute to the destabilization of eruptive solar magnetic fields.

Accepted for publication in The Astrophysical Journal

Topics & keywords

#magnetic reconnection#solar eruptions#magnetic helicity#coronal magnetic fields#flare observationscounter-helicity reconnectionnonlinear force-free field extrapolationM7.0 flareNOAA AR 13615hard X-ray source