Formation of Magnetic Switchbacks via expanding Alfvén Waves
arXiv:2504.13384 · doi:10.1051/0004-6361/202450220
Abstract
Context. Large-amplitude inversions of the solar wind's interplanetary magnetic field have long been documented; however, observations from the Parker Solar Probe (PSP) mission have renewed interest in this phenomenon as such features, often termed switchbacks, may constrain both the sources of the solar wind as well as in-situ nonlinear dynamics and turbulent heating. Aims. We aim to show that magnetic field fluctuations in the solar wind are consistent with Alfvénic fluctuations that naturally form switchback inversions in the magnetic field through expansion effects. Methods. We examine PSP observations of the evolution of a single stream of solar wind in a radial scan from PSP's tenth perihelion encounter from approximately 15-50 solar radii. We study the growth and radial scaling of normalized fluctuation amplitudes in the magnetic field, , within the framework of spherical polarization. We compare heating rates computed via outer-scale decay from consideration of wave-action to proton heating rates empirically observed through considering adiabatic expansion. Results. We find that the magnetic field fluctuations are largely spherically polarized and that the normalized amplitudes of the magnetic field, , increases with amplitude. The growth of the magnetic field amplitude leads to switchback inversions in the magnetic field. While the amplitudes do not grow as fast as predicted by the conservation of wave action, the deviation from the expected scaling yields an effective heating rate, which is close to the empirically observed proton heating rate. Conclusions. The observed scaling of fluctuation amplitudes is largely consistent with a picture of expanding Alfvén waves that seed turbulence leading to dissipation. The expansion of the waves leads to the growth of wave-amplitudes, resulting in the formation of switchbacks.
References in corpus (10)
- Switchbacks in the near-Sun magnetic field: long memory and impact on the turbulence cascade
- First in-situ Measurements of Electron Density and Temperature from Quasi-Thermal Noise Spectroscopy with Parker Solar Probe/FIELDS
- In-situ switchback formation in the expanding solar wind
- Magnetic field kinks and folds in the solar wind
- Ion kinetic energy conservation and magnetic field strength constancy in multi-fluid solar wind Alfvénic turbulence
- In situ observations of large amplitude Alfvén waves heating and accelerating the solar wind
- Inferred Linear Stability of Parker Solar Probe Observations using One- and Two-Component Proton Distributions
- Prediction and Verification of Parker Solar Probe Solar Wind Sources at 13.3 R
- Proton Core Behaviour Inside Magnetic Field Switchbacks
- The Turbulent Heating Rate in Strong MHD Turbulence with Nonzero Cross Helicity