Magnetic topology of bubbles in quiescent prominences

  • J. Dudík
  • , G. Aulanier
  • , B. Schmieder
  • , M. Zapiór
  • , P. Heinzel

Research output: Contribution to journalArticlepeer-review

Abstract

We study a polar-crown prominence with a bubble and its plume observed in several coronal filters by the SDO/AIA and in Hα by the MSDP spectrograph in Białków (Poland) to address the following questions: what is the brightness of prominence bubbles in EUV with respect to the corona outside of the prominence and the prominence coronal cavity? What is the geometry and topology of the magnetic field in the bubble? What is the nature of the vertical threads seen within prominences? We find that the brightness of the bubble and plume is lower than the brightness of the corona outside of the prominence, and is similar to that of the coronal cavity. We constructed linear force-free models of prominences with bubbles, where the flux rope is perturbed by inclusion of parasitic bipoles. The arcade field lines of the bipole create the bubble, which is thus devoid of magnetic dips. Shearing the bipole or adding a second one can lead to cusp-shaped prominences with bubbles similar to the observed ones. The bubbles have complex magnetic topology, with a pair of coronal magnetic null points linked by a separator outlining the boundary between the bubble and the prominence body. We conjecture that plume formation involves magnetic reconnection at the separator. Depending on the viewing angle, the prominence can appear either anvil-shaped with predominantly horizontal structures, or cusp-shaped with predominantly vertical structuring. The latter is an artifact of the alignment of magnetic dips with respect to the prominence axis and the line of sight.

Original languageEnglish
Article number9
JournalAstrophysical Journal
Volume761
Issue number1
DOIs
Publication statusPublished - 10 Dec 2012
Externally publishedYes

Keywords

  • Sun: UV radiation
  • Sun: corona
  • Sun: filaments prominences
  • Sun: magnetic topology
  • Sun: surface magnetism

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