COCONUT, a novel fast-converging MHD model for solar corona simulations: II. Assessing the impact of the input magnetic map on space-weather forecasting at minimum of activity
arXiv:2210.06165 · doi:10.3847/1538-4357/ac9799
Abstract
This paper is dedicated to the new implicit unstructured coronal code COCONUT, which aims at providing fast and accurate inputs for space weather forecast as an alternative to empirical models. We use all 20 available magnetic maps of the solar photosphere covering the date of the 2nd of July 2019 which corresponds to a solar eclipse on Earth. We use the same standard pre-processing on all maps, then perform coronal MHD simulations with the same numerical and physical parameters. In the end, we quantify the performance for each map using three indicators from remote-sensing observations: white-light total solar eclipse images for the streamers' edges, EUV synoptic maps for coronal holes and white-light coronagraph images for the heliospheric current sheet. We discuss the performance for space weather forecasts and we show that the choice of the input magnetic map has a strong impact. We find performances between 24% to 85% for the streamers' edges, 24% to 88% for the coronal hole boundaries and a mean deviation between 4 to 12 degrees for the heliospheric current sheet position. We find that the HMI runs are globally performing better on all indicators, with the GONG-ADAPT being the second-best choice. HMI runs perform better for the streamers' edges, GONG-ADAPT for polar coronal holes, HMI synchronic for equatorial coronal holes and for the streamer belt. We especially showcase the importance of the filling of the poles. This demonstrates that the solar poles have to be taken into account even for ecliptic plane previsions.
27 pages, 11 figures, Accepted in ApJ
References in corpus (20)
- Understanding space weather to shield society: A global road map for 2015-2025 commissioned by COSPAR and ILWS
- Magnetic Landscape of Sun's Polar Region
- The Open Flux Problem
- Advancements in the ADAPT Photospheric Flux Transport Model
- Solar Energetic Particles (Second Edition)
- The role of Alfvén wave dynamics on the large scale properties of the solar wind: comparing an MHD simulation with PSP E1 data
- Characteristic scales of magnetic switchback patches near the Sun and their possible association with solar supergranulation and granulation
- Estimating Total Open Heliospheric Magnetic Flux
- Multifluid modeling of magnetosonic wave propagation in the solar chromosphere -- effects of impact ionization and radiative recombination
- COCONUT, a novel fast-converging MHD model for solar corona simulations: I. Benchmarking and optimization of polytropic solutions
- Coronal Magnetic Field Topology From Total Solar Eclipse Observations
- The Dynamic Time Warping as a Means to Assess Solar Wind Time Series
- Implementing the MULTI-VP coronal model in EUHFORIA: test case results and comparisons with the WSA coronal model
- Large-scale Structure and Turbulence Transport in the Inner Solar Wind -- Comparison of Parker Solar Probe's First Five Orbits with a Global 3D Reynolds-averaged MHD Model
- Constraining Global Coronal Models with Multiple Independent Observables
- Variations in Finite Difference Potential Fields
- Assessing the Influence of Input Magnetic Maps on Global Modeling of the Solar Wind and CME-driven Shock in the 2013 April 11 Event
- Effects of Mesh Topology on MHD Solution Features in Coronal Simulations
- Validation scheme for solar coronal models -- constraints from multi-perspective observations in EUV and white-light
- Validation of a wave heated 3D MHD coronal-wind model using Polarized Brightness and EUV observations
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- SIP-IFVM: Efficient time-accurate magnetohydrodynamic model of the corona and coronal mass ejections
- Time-evolving coronal modelling of the solar maximum around the solar storms in May 2024 by COCONUT
- Magnetic connectivity from the Sun to the Earth with MHD models I. Impact of the magnetic modelling for connectivity validation
- Coronal electron density: Insights from radio and in situ observations, and EUHFORIA modeling