Reconstructing the Sun's Alfvén surface and wind braking torque with Parker Solar Probe
arXiv:2509.07088 · doi:10.1051/0004-6361/202556391
Abstract
The Alfvén surface -- where the solar wind exceeds the local Alfvén speed as it expands into interplanetary space -- is now routinely probed by NASA's Parker Solar Probe (PSP) in the near-Sun environment. The size of the Alfvén surface governs how efficiently the solar wind braking torque causes the Sun to spin-down. We aimed to characterise the size and evolution of the Alfvén surface as magnetic activity increased during solar cycle 25. The Alfvén surface was extrapolated from the solar wind mass and magnetic flux measured by the SWEAP and FIELDS instrument suites onboard PSP. We accounted for the acceleration of the solar wind along Parker spiral magnetic field lines and used potential field source surface modelling to determine the sources of the solar wind. The longitudinally averaged Alfvén radius measured by PSP grew from 11 to 16 solar radii as solar activity increased. Accordingly, the solar wind angular momentum-loss rate grew from 1.4 erg to 3 erg. Both the radial and longitudinal scans of the solar wind contained fluctuations of 10-40\% from the average Alfvén radius in each encounter. Structure in the solar corona influenced the morphology of the Alfvén surface, which was smallest around the heliospheric current sheet and pseudostreamers. The Alfvén surface was highly structured and time-varying however, at large-scales, organised by the coronal magnetic field. The evolution of the solar corona over the solar cycle systematically shifted the magnetic connectivity of PSP and influenced our perception of the Alfvén surface. The Alfvén surface was 30\% larger than both thermally-driven and Alfvén wave-driven wind simulations with the same mass-loss rate and open magnetic flux, but had a similar dependence on the wind magnetisation parameter.
Accepted to A&A. 9 Pages + Appendix. 8 Figures + 5 Appendix Figures
References in corpus (23)
- Array Programming with NumPy
- The Solar Orbiter mission -- Science overview
- The effect of magnetic topology on thermally-driven winds: towards a general formulation of the braking law
- The Solar Probe Cup on Parker Solar Probe
- Advancements in the ADAPT Photospheric Flux Transport Model
- First in-situ Measurements of Electron Density and Temperature from Quasi-Thermal Noise Spectroscopy with Parker Solar Probe/FIELDS
- Magnetic connectivity of the ecliptic plane within 0.5 AU : PFSS modeling of the first PSP encounter
- Turbulence in the sub-Alfvénic solar wind driven by reflection of low-frequency Alfvén waves
- Inbound waves in the solar corona: a direct indicator of Alfvén Surface location
- Prediction and Verification of Parker Solar Probe Solar Wind Sources at 13.3 R
- Strong Preferential Ion Heating is Limited to within the Solar Alfven Surface
- Global solar magnetic field organization in the outer corona: influence on the solar wind speed and mass flux over the cycle
- Magnetic braking of Sun-like and low-mass stars: Dependence on coronal temperature
- Exploring the Solar Wind from its Source on the Corona into the Inner Heliosphere during the First Solar Orbiter - Parker Solar Probe Quadrature
- Direct Detection of Solar Angular Momentum Loss with the Wind Spacecraft
- On the Generation and Evolution of Switchbacks and the Morphology of Alfvénic Transition: Low Mach-number Boundary Layers
- Flux conservation, radial scalings, Mach numbers, and critical distances in the solar wind: magnetohydrodynamics and Ulysses observations
- Modeling Solar Wind Variations over an 11-yr Cycle with Alfvén Wave Dissipation: a Parameter Study
- Evolution of solar wind sources and coronal rotation driven by the cyclic variation of the Sun's large-scale magnetic field
- Accounting for Differential Rotation in Calculations of the Sun's Angular Momentum-loss Rate
- Nested active regions anchor the heliospheric current sheet and stall the reversal of the coronal magnetic field
- A prolific solar flare factory. Nearly continuous monitoring of an active region nest with Solar Orbiter
- The effect of turbulence on the angular momentum of the solar wind