Quantifying Uncertainties in Solar Wind Forecasting Due to Incomplete Solar Magnetic Field Information
arXiv:2504.19534 · doi:10.3847/1538-4357/adcf9e
Abstract
Solar wind forecasting plays a crucial role in space weather prediction, yet significant uncertainties persist due to incomplete magnetic field observations of the Sun. Isolating the solar wind forecasting errors due to these effects is difficult. This study investigates the uncertainties in solar wind models arising from these limitations. We simulate magnetic field maps with known uncertainties, including far-side and polar field variations, as well as resolution and sensitivity limitations. These maps serve as input for three solar wind models: the Wang-Sheeley-Arge (WSA), the Heliospheric Upwind eXtrapolation (HUXt), and the European Heliospheric FORecasting Information Asset (EUHFORIA). We analyze the discrepancies in solar wind forecasts, particularly the solar wind speed at Earth's location, by comparing the results of these models to a created "ground truth" magnetic field map, which is derived from a synthetic solar rotation evolution using the Advective Flux Transport (AFT) model. The results reveal significant variations within each model with a RMSE ranging from 59-121 km/s. Further comparison with the thermodynamic Magnetohydrodynamic Algorithm outside a Sphere (MAS) model indicates that uncertainties in the magnetic field data can lead to even larger variations in solar wind forecasts compared to those within a single model. However, predicting a range of solar wind velocities based on a cloud of points around Earth can help mitigate uncertainties by up to 20-77%.
Accepted in ApJ
References in corpus (7)
- The Solar Orbiter mission -- Science overview
- Verification of high-speed solar wind stream forecasts using operational solar wind models
- Effects of Meridional Flow Variations on Solar Cycles 23 and 24
- Closed-Field Coronal Heating Driven by Wave Turbulence
- Real-time solar wind prediction based on SDO/AIA coronal hole data
- How to Estimate the Far-Side Open Flux using STEREO Coronal Holes
- Combined Surface Flux Transport and Helioseismic Far-side Active Region Model (FARM)