The horizontal internetwork magnetic field: numerical simulations in comparison to observations with Hinode
arXiv:0801.4915 · doi:10.1086/589740
Abstract
Observations with the Hinode space observatory led to the discovery of predominantly horizontal magnetic fields in the photosphere of the quiet internetwork region. Here we investigate realistic numerical simulations of the surface layers of the Sun with respect to horizontal magnetic fields and compute the corresponding polarimetric response in the Fe I 630 nm line pair. We find a local maximum in the mean strength of the horizontal field component at a height of around 500 km in the photosphere, where it surpasses the vertical component by a factor of 2.0 or 5.6, depending on the initial and boundary conditions. From the synthesized Stokes profiles we derive a mean horizontal field component that is, respectively, 1.6 and 4.3 times stronger than the vertical component. This is a consequence of both the intrinsically stronger flux density of, and the larger area occupied by the horizontal fields. We find that convective overshooting expels horizontal fields to the upper photosphere, making the Poynting flux positive in the photosphere, while this quantity is negative in the convectively unstable layer below it.
4 pages, 3 figures, minor revisions, esp. concerning top boundary cond., ApJL accepted
References in corpus (5)
- Emergence of Small-Scale Magnetic Loops in the Quiet Sun Internetwork
- Quiet Sun internetwork magnetic fields from the inversion of Hinode measurements
- Strong horizontal photospheric magnetic field in a surface dynamo simulation
- Transient horizontal magnetic fields in solar plage regions
- Hinode observations reveal boundary layers of magnetic elements in the solar photosphere
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- Horizontal Magnetic Fields in the Solar Photosphere
- Near-surface stellar magneto-convection: simulations for the Sun and a metal-poor solar analog