The small-scale structure of photospheric convection retrieved by a deconvolution technique applied to Hinode/SP data
arXiv:1709.06933 · doi:10.3847/1538-4357/aa8e44
Abstract
Solar granules are bright patterns surrounded by dark channels called intergranular lanes in the solar photosphere and are a manifestation of overshooting convection. Observational studies generally find stronger upflows in granules and weaker downflows in intergranular lanes. This trend is, however, inconsistent with the results of numerical simulations in which downflows are stronger than upflows through the joint action of gravitational acceleration/deceleration and pressure gradients. One cause of this discrepancy is the image degradation caused by optical distortion and light diffraction and scattering that takes place in an imaging instrument. We apply a deconvolution technique to Hinode/SP data in an attempt to recover the original solar scene. Our results show a significant enhancement in both, the convective upflows and downflows, but particularly for the latter. After deconvolution, the up- and downflows reach maximum amplitudes of -3.0 km/s and +3.0 km/s at an average geometrical height of roughly 50 km, respectively. We found that the velocity distributions after deconvolution match those derived from numerical simulations. After deconvolution the net LOS velocity averaged over the whole FOV lies close to zero as expected in a rough sense from mass balance.
32 pages, 13 figures, accepted for publication in ApJ
References in corpus (12)
- The Solar Optical Telescope for the Hinode Mission: An Overview
- The intensity contrast of solar granulation: comparing Hinode SP results with MHD simulations
- The origin of the reversed granulation in the solar photosphere
- Point spread functions for the Solar Optical Telescope onboard Hinode
- Properties of solar plage from a spatially coupled inversion of Hinode SP data
- Internetwork magnetic field as revealed by 2D inversions
- Observational evidence for buffeting induced kink waves in solar magnetic elements
- Spatial deconvolution of spectropolarimetric data: an application to quiet Sun magnetic elements
- The history of a quiet-Sun magnetic element revealed by IMaX/SUNRISE
- Vector magnetic fields of Solar Granulation
- Height-dependent velocity structure of photospheric convection in granules and intergranular lanes with Hinode/SOT
- Chromospheric and Coronal Wave Generation in a Magnetic Flux Sheath
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