Supergranules as Probes of Solar Convection Zone Dynamics
arXiv:1203.2593 · doi:10.1088/2041-8205/749/1/L13
Abstract
Supergranules are convection cells seen at the Sun's surface as a space filling pattern of horizontal flows. While typical supergranules have diameters of about 35 Mm, they exhibit a broad spectrum of sizes from ~10 Mm to ~100 Mm. Here we show that supergranules of different sizes can be used to probe the rotation rate in the Sun's outer convection zone. We find that the equatorial rotation rate as a function of depth as measured by global helioseismology matches the equatorial rotation as a function of wavelength for the supergranules. This suggests that supergranules are advected by flows at depths equal to their wavelengths and thus can be used to probe flows at those depths. The supergranule rotation profiles show that the surface shear layer, through which the rotation rate increases inward, extends to depths of ~50 Mm and to latitudes of at least 70 degrees. Typical supergranules are well observed at high latitudes and have a range of sizes that extend to greater depths than those typically available for measuring subsurface flows with local helioseismology. These characteristics indicate that probing the solar convection zone dynamics with supergranules can complement the results of helioseismology.
6 pages, 3 figures, Accepted for publication in The Astrophysical Journal Letters
References in corpus (2)
Cited by in corpus (14)
- Meridional Circulation in Solar and Stellar Convection Zones
- Giant Convection Cells Found on the Sun
- Supergranules as Probes of the Sun's Meridional Circulation
- Meridional Flow in the Solar Convection Zone II: Helioseismic Inversions of GONG Data
- Meridional Flow in the Solar Convection Zone I: Measurements from GONG Data
- Hydrodynamic Properties of the Sun's Giant Cellular Flows
- Inversions for Average Supergranular Flows Using Finite-frequency Kernels
- Incorporating Surface Convection into a 3D Babcock-Leighton Solar Dynamo Model
- Recent advances in the 3D kinematic Babcock-Leighton solar dynamo modeling
- Probabilistic Inversions for Time-Distance Helioseismology
- Supergranular Fractal Dimension and Solar Rotation
- Validating time-distance helioseismic inversions for non-separable subsurface profiles of an average supergranule
- Helioseismic finite-frequency sensitivity kernels for flows in spherical geometry including systematic effects
- A Three- dimensional Babcock-Leighton Solar Dynamo Model with Non-axisymmetric Convective Flows