Properties of simulated sunspot umbral dots
Свойства смоделированных пор солнечных пятен
2009-11-27
SCID: 54.1/anuam8r6
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3D radiative MHD simulationsmagneto-convectionmulti-level segmentation and trackingspectro-polarimetric observationssunspot umbral dots
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Abstract (AI)
Realistic 3D radiative MHD simulations reveal the magneto-convective processes underlying the formation of the photospheric fine structure of sunspots, including penumbral filaments and umbral dots. Here we provide results from a statistical analysis of simulated umbral dots and compare them with reports from high-resolution observations. A multi-level segmentation and tracking algorithm has been used to isolate the bright structures in synthetic bolometric and continuum brightness images. Areas, brightness, and lifetimes of the resulting set of umbral dots are found to be correlated: larger umbral dots tend to be brighter and live longer. The magnetic field strength and velocity structure of umbral dots on surfaces of constant optical depth in the continuum at 630 nm indicate that the strong field reduction and high velocities in the upper parts of the upflow plumes underlying umbral dots are largely hidden from spectro-polarimetric observations. The properties of the simulated umbral dots are generally consistent with the results of recent high-resolution observations. However, the observed population of small, short-lived umbral dots is not reproduced by the simulations, possibly owing to insufficient spatial resolution.
Key Findings
1
A multi-level segmentation and tracking algorithm isolated umbral dots in synthetic bolometric and 630-nm continuum brightness images.
2
Realistic 3D radiative MHD simulations were statistically analyzed to characterize simulated sunspot umbral dots and compare them with high-resolution observations.
3
Simulated umbral dots generally match observations, but simulations fail to reproduce the observed small, short-lived population, possibly because of insufficient spatial resolution.
4
Strong magnetic-field reduction and high velocities in the upper upflow plumes beneath umbral dots are largely hidden from spectropolarimetric observations.
5
Umbral-dot area, brightness, and lifetime are correlated: larger dots tend to be brighter and persist longer.
Research Object
Simulated sunspot umbral dots and their underlying magneto-convective upflow plumes
Research Subject
Statistical and physical properties of umbral dots, including correlations among area, brightness, and lifetime, as well as magnetic-field reduction and velocity structure across optical-depth surfaces
Publication Details
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2009-11-27
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