Proposal of a Novel Physical Parameter Characterizing Solar Wind Speed in a Wave-Driven Model
arXiv:2601.21229 · doi:10.3847/1538-4357/ae2fea
Abstract
Empirical solar wind speed models play an important role in enabling space weather forecasting with low computational cost. Among these, one model called WS model is based on the asymptotic expansion factor. However, it is known that it fails in the case of pseudostreamers. In this study, as a first step toward constructing a solar wind speed empirical model based on physical parameters, we investigated the effect of the radial profile of flux-tube shape on the solar wind speed using one-dimensional numerical simulations. In the simulations, ad hoc Alfvén waves are injected from the photosphere at as the energy source, and the MHD equations are solved out to the interplanetary space at to reproduce solar wind acceleration. As a result, even when the coronal base magnetic field and the asymptotic expansion factor are fixed, the final solar wind speed varies by approximately 300 km s depending on changes in the expansion height or non-monotonic expansion. Additionally, across all simulations performed, a better correlation is found with the quantities that reflect the information about the radial profile of flux-tube shape than the asymptotic expansion factor. Our results suggest that, as a physical characteristic parameter of the solar wind speed, an operation that can account for the expansion factor throughout the corona is necessary.
23 pages, 10 figures
References in corpus (20)
- Ensemble modeling of CMEs using the WSA-ENLIL+Cone model
- Forecasting Solar Wind Speeds
- Three-dimensional simulation of the fast solar wind driven by compressible magnetohydrodynamic turbulence
- Three-dimensional Magnetohydrodynamic Simulation of the Formation of Solar Chromospheric Jets with Twisted Magnetic Field Lines
- Enhanced Energy Transfer Rate in Solar Wind Turbulence Observed near the Sun from Parker Solar Probe
- Picoflare jets power the solar wind emerging from a coronal hole on the Sun
- Mapping Solar Magnetic Fields from the Photosphere to the Base of the Corona
- Direct and Inverse Cascades in the Acceleration Region of the Fast Solar Wind
- Small-scale Flux Emergence, Coronal Hole Heating, and Flux-tube Expansion: A Hybrid Solar Wind Model
- Predictions for the First Parker Solar Probe Encounter
- Prediction and Verification of Parker Solar Probe Solar Wind Sources at 13.3 R
- Flux ropes and dynamics of the heliospheric current sheet
- Alfvén-wave driven magnetic rotator winds from low-mass stars I: rotation dependences of magnetic braking and mass-loss rate
- Stirring the Base of the Solar Wind: On Heat Transfer and Vortex Formation
- Magnetic Tornado Properties: A Substantial Contribution to the Solar Coronal Heating via Efficient Energy Transfer
- The nature of Elsässer variables in compressible MHD
- Average radial structures of gas convection in the solar granulation
- Electron Heat Flux in the Solar Wind: Generalized Approaches to Fluid Transport with a Variety of Skewed Velocity Distributions
- Total Solar Eclipse White Light Images as a Benchmark for PFSS Coronal Magnetic Field Models: An In-Depth Analysis over a Solar Cycle
- Coronal Properties of Low-mass Population III Stars and the Radiative Feedback in the Early Universe