Inclination of magnetic fields and flows in sunspot penumbrae

Наклон магнитных полей и потоков в полутенях солнечных пятен
K. Langhans, G. B. Scharmer, D. Kiselman, M. G. Löfdahl, Thomas Berger
2005-06-01

Fe I 630.25 nmdark-cored filamentsfluted and uncombed modelsmagnetic field inclinationsunspot penumbrae
An observational study of the inclination of magnetic fields and flows in sunspot penumbrae at a spatial resolution of is presented. The analysis is based on longitudinal magnetograms and Dopplergrams obtained with the Swedish 1-m Solar Telescope on La Palma using the Lockheed Solar Optical Universal Polarimeter birefringent filter. Data from two sunspots observed at several heliocentric angles between 12° and 39° were analyzed. We find that the magnetic field at the level of the formation of the Fe i-line wing (630.25 nm) is in the form of coherent structures that extend radially over nearly the entire penumbra giving the impression of vertical sheet-like structures. The inclination of the field varies up to 45° over azimuthal distances close to the resolution limit of the magnetograms. Dark penumbral cores, and their extensions into the outer penumbra, are prominent features associated with the more horizontal component of the magnetic field. The inclination of this dark penumbral component – designated B – increases outwards from approximately 40° in the inner penumbra such that the field lines are nearly horizontal or even return to the solar surface already in the middle penumbra. The bright component of filaments – designated A – is associated with the more vertical component of the magnetic field and has an inclination with respect to the normal of about 35° in the inner penumbra, increasing to about 60° towards the outer boundary. The magnetogram signal is lower in the dark component B regions than in the bright component A regions of the penumbral filaments. The measured rapid azimuthal variation of the magnetogram signal is interpreted as being caused by combined fluctuations of inclination and magnetic field strength. The Dopplergrams show that the velocity field associated with penumbral component B is roughly aligned with the magnetic field while component A flows are more horizontal than the magnetic field. The observations give general support to fluted and uncombed models of the penumbra. The long-lived nature of the dark-cored filaments makes it difficult to interpret these as evidence for convective exchange of flux tubes. Our observations are in broad agreement with the two component model of Bellot Rubi et al. (2003), but do not rule out the embedded flux tube model of Solanki & Montavon (1993).
1
Bright component A is associated with more vertical fields, whose inclination increases from about 35° in the inner penumbra to about 60° near the outer boundary.
2
Dark penumbral component B is associated with more horizontal fields; its inclination increases outward from approximately 40° to nearly horizontal or returning field lines by the middle penumbra.
3
Penumbral component B has weaker magnetogram signals and flows roughly aligned with the magnetic field, whereas component A flows are more horizontal than the field.
4
Sunspot penumbral magnetic fields form coherent, radially extended structures resembling vertical sheets, with inclinations varying by up to 45° over near-resolution azimuthal distances.
5
The observations support fluted and uncombed penumbra models and broadly agree with a two-component model, while not excluding embedded flux-tube models.

Magnetic fields and flows in sunspot penumbrae, including the dark B and bright A filament components

Spatial and azimuthal inclination, strength, and alignment of penumbral magnetic fields and flows, including their association with filament components and implications for penumbral structure models

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2005-06-01
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Authors
K. Langhans
G. B. Scharmer
D. Kiselman
M. G. Löfdahl
Thomas Berger
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