Decay of a simulated mixed-polarity magnetic field in the solar surface layers
arXiv:1108.1155 · doi:10.1051/0004-6361/201116974
Abstract
Magnetic flux is continuously being removed and replenished on the solar surface. To understand the removal process we carried out 3D radiative MHD simulations of the evolution of patches of photospheric magnetic field with equal amounts of positive and negative flux. We find that the flux is removed at a rate corresponding to an effective turbulent diffusivity, of 100--340 km^2/s, depending on the boundary conditions. For average unsigned flux densities above about 70 Gauss, the percentage of surface magnetic energy coming from different field strengths is almost invariant. The overall process is then one where magnetic elements are advected by the horizontal granular motions and occasionally come into contact with opposite-polarity elements. These reconnect above the photosphere on a comparatively short time scale after which the U loops produced rapidly escape through the upper surface while the downward retraction of inverse-U loops is significantly slower, because of the higher inertia and lower plasma beta in the deeper layers.
8 pages, 10 figures accepted in A&A
References in corpus (8)
- A solar surface dynamo
- Magneto-convection in a sunspot umbra
- Emergence of Small-Scale Magnetic Loops in the Quiet Sun Internetwork
- Penumbral structure and outflows in simulated sunspots
- Solar surface emerging flux regions: a comparative study of radiative MHD modeling and Hinode SOT observations
- Turbulent small-scale dynamo action in solar surface simulations
- Low-lying magnetic loops in the solar internetwork
- Local helioseismology and correlation tracking analysis of surface structures in realistic simulations of solar convection
Cited by in corpus (27)
- The Magnetic Field in the Solar Atmosphere
- Magnetic Flux Transport at the Solar Surface
- Numerical simulations of active region scale flux emergence: From spot formation to decay
- Limits to solar cycle predictability: Cross-equatorial flux plumes
- Vortices, shocks, and heating in the solar photosphere: effect of a magnetic field
- Modeling Solar Cycles 15 to 21 Using a Flux Transport Dynamo
- Solar magnetoconvection and small-scale dynamo: Recent developments in observation and simulation
- Mechanisms for MHD Poynting flux generation in simulations of solar photospheric magneto-convection
- Migration of Ca II H bright points in the internetwork
- The frontier between Small-scale bipoles and Ephemeral Regions in the solar photosphere: Emergence and Decay of an Intermediate-scale bipole observed with IMaX/SUNRISE
- Sunrise III: Overview of Observatory and Instruments
- Comparison of physics-based prediction models of solar cycle 25
- Surface flux transport simulations: Effect of inflows toward active regions and random velocities on the evolution of the Sun's large-scale magnetic field
- Spherical-shell boundaries for two-dimensional compressible convection in a star
- Dispersal of G-band bright points at different longitudinal magnetic field strengths
- Meridional circulation dynamics from 3D MHD global simulations of solar convection
- Heating of the solar chromosphere through current dissipation
- Is magnetic reconnection the cause of supersonic upflows in granular cells ?
- Simulated Magnetic Flows in the Solar Photosphere
- Cancellation of Small-Scale Magnetic Features
- The cross helicity at the solar surface by simulations and observations
- Center-to-limb variation of the area covered by magnetic bright points in the quiet Sun
- Plasma flows and magnetic field interplay during the formation of a pore
- Estimation of turbulent diffusivity with direct numerical simulation of stellar convection
- Atomic physics and modern solar spectro-polarimetry
- Influence of phase-diversity image reconstruction techniques on circular polarization asymmetries
- Modeling the effects of a lightbridge on oscillations in a solar pore