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Development of a structured, turbulent solar wind as a result of interchange reconnection

2023/06/06 by J. F. Drake, Drake, J. F., S. D. Bale +7
Computer Science · Physics and Astronomy · #FOS: Physical sciences #Ionosphere and magnetosphere dynamics #Solar Radiation and Photovoltaics #Solar and Space Plasma Dynamics #Solar and Stellar Astrophysics (astro-ph.SR) #Space Physics (physics.space-ph)

paper · pdf · doi:10.48550/arxiv.2306.03425

openalex publication_date 2023/06/06 · openalex created_date 2023/06/10 · openalex updated_date 2026/07/28

Abstract

The role of interchange reconnection as a drive mechanism for the solar wind is explored by solving the global magnetic-field-aligned equations describing wind acceleration. Boundary conditions in the low corona, including a reconnection-driven Alfvénic outflow and associated heating differ from previous models. Additional heating of the corona associated with Alfvén waves or other MHD turbulence, which has been the foundation of many earlier models, is neglected. For this simplified model a sufficient condition for interchange reconnection to overcome gravity to drive the wind is derived. The combination of Alfvénic ejection and reconnection-driven heating yields a minimum value of the Alfvén speed of the order of 350-400km/s that is required to drive the wind. Recent evidence based on Parker Solar Probe (PSP) observations suggests that this threshold is typically exceeded in the coronal holes that are the source regions of the fast wind. On the other hand, since reconnection in the coronal environment is predicted to have a bursty character, the magnitude of reconnection outflows can be highly variable. The consequence is a highly non-uniform wind in which in some regions the velocity increases sharply to super-Alfvénic values while in adjacent regions the formation of an asymptotic wind fails. A simple model is constructed to describe the turbulent mixing of these highly-sheared super-Alfvénic flows that suggests these flows are the free-energy source of the Alfvénic turbulence and associated switchbacks that have been documented in the PSP data in the near coronal environment. The global wind profiles are presented and benchmarked with Parker Solar Probe (PSP) observations at 12 solar radii.

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