A distinct magnetic property of the inner penumbral boundary
Abstract
A sunspot emanates from a growing pore or protospot. In order to trigger the formation of a penumbra, large inclinations at the outskirts of the protospot are necessary. The penumbra develops and establishes by colonising both umbral areas and granulation. Evidence for a unique stable boundary value for the vertical component of the magnetic field strength, , was found along the umbra-penumbra boundary of developed sunspots. We use broadband G-band images and spectropolarimetric GFPI/VTT data to study the evolution of and the vertical component of the magnetic field on a forming umbra-penumbra boundary. For comparison with stable sunspots, we also analyse the two maps observed by Hinode/SP on the same spot after the penumbra formed. The vertical component of the magnetic field, , at the umbra-penumbra boundary increases during penumbra formation owing to the incursion of the penumbra into umbral areas. After 2.5 hours, the penumbra reaches a stable state as shown by the GFPI data. At this stable stage, the simultaneous Hinode/SP observations show a value comparable to that of umbra-penumbra boundaries of fully fledged sunspots. We confirm that the umbra-penumbra boundary, traditionally defined by an intensity threshold, is also characterised by a distinct canonical magnetic property, namely by . During the penumbra formation process, the inner penumbra extends into regions where the umbra previously prevailed. Hence, in areas where , the magneto-convection mode operating in the umbra turns into a penumbral mode. Eventually, the inner penumbra boundary settles at , which hints toward the role of as inhibitor of the penumbral mode of magneto-convection.
Keywords
Cite
@article{arxiv.1506.08574,
title = {A distinct magnetic property of the inner penumbral boundary},
author = {Jan Jurčák and Nazaret Bello Gonzalez and Rolf Schlichenmaier and Reza Rezaei},
journal= {arXiv preprint arXiv:1506.08574},
year = {2015}
}
Comments
Accepted as a Letter to A&A. Reproduced with permission from Astronomy & Astrophysics, \copyright ESO