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Shear-Driven Transition to Isotropically Turbulent Solar Wind Outside the Alfven Critical Zone

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arxiv 2009.06537 v1 pith:DXCNRJYN submitted 2020-09-14 physics.space-ph astro-ph.SRphysics.plasm-ph

Shear-Driven Transition to Isotropically Turbulent Solar Wind Outside the Alfven Critical Zone

classification physics.space-ph astro-ph.SRphysics.plasm-ph
keywords solaralfvcriticalzonedynamicsmagneticnearobservations
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Motivated by prior remote observations of a transition from striated solar coronal structures to more isotropic ``flocculated'' fluctuations, we propose that the dynamics of the inner solar wind just outside the Alfv\'en critical zone, and in the vicinity of the first $\beta=1$ surface, is powered by the relative velocities of adjacent coronal magnetic flux tubes. We suggest that large amplitude flow contrasts are magnetically constrained at lower altitude but shear-driven dynamics are triggered as such constraints are released above the Alfv\'en critical zone, as suggested by global magnetohydrodynamic (MHD) simulations that include self-consistent turbulence transport. We argue that this dynamical evolution accounts for features observed by {\it Parker Solar Probe} ({\it PSP}) near initial perihelia, including magnetic ``switchbacks'', and large transverse velocities that are partially corotational and saturate near the local Alfv\'en speed. Large-scale magnetic increments are more longitudinal than latitudinal, a state unlikely to originate in or below the lower corona. We attribute this to preferentially longitudinal velocity shear from varying degrees of corotation. Supporting evidence includes comparison with a high Mach number three-dimensional compressible MHD simulation of nonlinear shear-driven turbulence, reproducing several observed diagnostics, including characteristic distributions of fluctuations that are qualitatively similar to {\it PSP} observations near the first perihelion. The concurrence of evidence from remote sensing observations, {\it in situ} measurements, and both global and local simulations supports the idea that the dynamics just above the Alfv\'en critical zone boost low-frequency plasma turbulence to the level routinely observed throughout the explored solar system.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Evolution and Impact of Switchbacks Throughout the Heliosphere

    physics.space-ph 2026-07 accept novelty 3.0

    Switchbacks grow under expansion then erode by multiple processes, contributing free energy to solar-wind turbulence, heating, acceleration and particle transport.