SUNRISE: Instrument, Mission, Data, and First Results

The SUNRISE balloon-borne solar observatory consists of a 1 m aperture Gregory telescope, a UV filter imager, an imaging vector polarimeter, an image stabilization system, and further infrastructure. The first science flight of SUNRISE yielded high-quality data that revealed the structure, dynamics,...

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Veröffentlicht in:Astrophysical journal. Letters 2010-11, Vol.723 (2), p.L127-L133
Hauptverfasser: Solanki, S. K, Barthol, P, Danilovic, S, Feller, A, Gandorfer, A, Hirzberger, J, Riethmüller, T. L, Schüssler, M, Bonet, J. A, Pillet, V. Martínez, del Toro Iniesta, J. C, Domingo, V, Palacios, J, Knölker, M, González, N. Bello, Berkefeld, T, Franz, M, Schmidt, W, Title, A. M
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Sprache:eng
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Zusammenfassung:The SUNRISE balloon-borne solar observatory consists of a 1 m aperture Gregory telescope, a UV filter imager, an imaging vector polarimeter, an image stabilization system, and further infrastructure. The first science flight of SUNRISE yielded high-quality data that revealed the structure, dynamics, and evolution of solar convection, oscillations, and magnetic fields at a resolution of around 100 km in the quiet Sun. After a brief description of instruments and data, the first qualitative results are presented. In contrast to earlier observations, we clearly see granulation at 214 nm. Images in Ca II H display narrow, short-lived dark intergranular lanes between the bright edges of granules. The very small-scale, mixed-polarity internetwork fields are found to be highly dynamic. A significant increase in detectable magnetic flux is found after phase-diversity-related reconstruction of polarization maps, indicating that the polarities are mixed right down to the spatial resolution limit and probably beyond.
ISSN:2041-8205
2041-8213
DOI:10.1088/2041-8205/723/2/L127