Can small-scale magnetic fields be the major cause for the near-surface effect of the solar p-mode frequencies?
arXiv:2106.03294 · doi:10.3847/1538-4357/ac0882
Abstract
Small-scale magnetic fields are not only the fundamental element of the solar magnetism, but also closely related to the structure of the solar atmosphere. The observations have shown that there is a ubiquitous tangled small-scale magnetic field with a strength of 60 130\,G in the canopy forming layer of the quiet solar photosphere. On the other hand, the multi-dimensional MHD simulations show that the convective overshooting expels the magnetic field to form the magnetic canopies at a height of about 500\,km in the upper photosphere. However, the distribution of such small-scale ``canopies" in the solar photosphere cannot be rigorously constrained by either observations and numerical simulations. Based on stellar standard models, we identify that these magnetic canopies can act as a global magnetic-arch splicing layer, and find that the reflections of the solar p-mode oscillations at this magnetic-arch splicing layer results in significant improvement on the discrepancy between the observed and calculated p-mode frequencies. The location of the magnetic-arch splicing layer is determined at a height of about 630\,km, and the inferred strength of the magnetic field is about 90\,G. These features of the magnetic-arch splicing layer derived independently in the present study are quantitatively in agreement with the presence of small-scale magnetic canopies as those obtained by the observations and 3-D MHD simulations.
16 pages, 5 figures, accepted for publication in ApJ
References in corpus (17)
- Modules for Experiments in Stellar Astrophysics (MESA)
- A Substantial Amount of Hidden Magnetic Energy in the Quiet Sun
- ADIPLS -- the Aarhus adiabatic oscillation package
- Correcting stellar oscillation frequencies for near-surface effects
- Numerical simulations of quiet Sun magnetism: On the contribution from a small-scale dynamo
- A new correction of stellar oscillation frequencies for near-surface effects
- Non-equilibrium hydrogen ionization in 2D simulations of the solar atmosphere
- Global Seismology of the Sun
- Strong horizontal photospheric magnetic field in a surface dynamo simulation
- Solving the discrepancy between the seismic and photospheric solar radius
- The horizontal internetwork magnetic field: numerical simulations in comparison to observations with Hinode
- On the surface physics affecting solar oscillation frequencies
- Efficient small-scale dynamo in solar convection zone
- Observed and Simulated Power Spectra of Kinetic and Magnetic Energy retrieved with 2D inversions
- First local helioseismic experiments with CO5BOLD
- Solar disk center shows scattering polarization in the Sr I 4607 Å line
- Estimating the nonstructural component of the helioseismic surface term using hydrodynamic simulations