The formation of sunspot penumbra. I. Magnetic field properties
arXiv:1111.3189 · doi:10.1051/0004-6361/201117485
Abstract
We study the formation of a sunspot penumbra in the active region NOAA11024. We simultaneously observed the Stokes parameters of the photospheric iron lines at 1089.6 nm with the TIP and 617.3 nm with the GFPI spectropolarimeters along with broad-band images using G-band and CaIIK filters at the German VTT. The formation of the penumbra is intimately related to the inclined magnetic field. Within 4.5 h observing time, the magnetic flux of the penumbra increases from 9.7E+20 to 18.2E+20 Mx, while the magnetic flux of the umbra remains constant at about 3.8E+20 Mx. Magnetic flux in the immediate surroundings is incorporated into the spot, and new flux is supplied via small flux patches (SFPs), which on average have a flux of 2-3E+18 Mx. The spot's flux increase rate of 4.2E+16 Mx/s corresponds to the merging of one SFP per minute. We also find that during the formation of the spot penumbra: a) the maximum magnetic field strength of the umbra does not change, b) the magnetic neutral line keeps the same position relative to the umbra, c) the new flux arrives on the emergence side of the spot while the penumbra forms on the opposite side, d) the average LRF inclination of the light bridges decreases from 50 to 37 deg, and e) as the penumbra develops, the mean magnetic field strength at the spot border decreases from 1.0 to 0.8 kG. The SFPs associated with elongated granules are the building blocks of structure formation in active regions. During the sunspot formation, their contribution is comparable to the coalescence of pores. A quiet environment in the surroundings is important for penumbral formation. As remnants of trapped granulation between merging pores, the light bridges are found to play a crucial role in the formation process. They seem to channel the magnetic flux through the spot during its formation. Light bridges are also the locations where the first penumbral filaments form.
14 pages, 12 figures, accepted by A&A
References in corpus (15)
- Magneto-convection in a sunspot umbra
- Solar surface emerging flux regions: a comparative study of radiative MHD modeling and Hinode SOT observations
- Magnetic flux emergence in granular convection: Radiative MHD simulations and observational signatures
- Relation between photospheric magnetic field and chromospheric emission
- Twisted flux tube emergence from the convection zone to the corona II: Later states
- A 3-D sunspot model derived from an inversion of spectropolarimetric observations and its implications for the penumbral heating
- Two-dimensional spectroscopy of a sunspot. III Thermal and kinematic structure of the penumbra at 0.5"
- Photospheric and Subphotospheric Dynamics of Emerging Magnetic Flux
- Stray-light contamination and spatial deconvolution of slit-spectrograph observations
- Temporal evolution of the Evershed flow in sunspots. I. Observational characterization of Evershed clouds
- The flow field in the sunspot canopy
- Sunspots: from small-scale inhomogeneities towards a global theory
- The photospheric environment of a solar pore with light bridge
- Spectropolarimetery of umbral fine structures from Hinode: Evidence for magnetoconvection
- Spectroscopy at the solar limb: I. Average off-limb profiles and Doppler shifts of Ca II H
Cited by in corpus (31)
- Critical Science Plan for the Daniel K. Inouye Solar Telescope (DKIST)
- Vigorous convection in a sunspot granular light bridge
- Properties of sunspot umbrae observed in Cycle 24
- Precursor of Sunspot Penumbral Formation discovered with Hinode SOT Observations
- Magnetic Flux Emergence and Decay Rates for Preceder and Follower Sunspots Observed with HMI
- Formation of the penumbra and start of the Evershed flow
- Plasma Beta Stratification in the Solar Atmosphere: A Possible Explanation for the Penumbra Formation
- A distinct magnetic property of the inner penumbral boundary
- A distinct magnetic property of the inner penumbral boundary. II. Formation of a penumbra at the expense of a pore
- Analysis of a Fragmenting Sunspot using Hinode Observations
- On the formation of a stable penumbra in a region of flux emergence in the Sun
- Horizontal flow fields in and around a small active region-- The transition period between flux emergence and decay
- Signatures of magnetic reconnection at the footpoints of fan shape jets on a light bridge driven by photospheric convective motions
- High-resolution imaging and near-infrared spectroscopy of penumbral decay
- Properties of the Umbral Filament Observed in Active Region NOAA 12529
- High-resolution imaging spectroscopy of two micro-pores and an arch filament system in a small emerging-flux region
- Penumbral decay observed in active region NOAA 12585
- Formation of a solar Ha filament from orphan penumbrae
- Plasma flows and magnetic field interplay during the formation of a pore
- The role of the chromospheric magnetic canopy in the formation of a sunspot penumbra
- The pre-penumbral magnetic canopy in the solar atmosphere
- Formation of a penumbra in a decaying sunspot
- Structure of sunspot light bridges in the chromosphere and transition region
- Long-Term Evolution of Three Light Bridges Developed on the Same Sunspot
- Photospheric plasma and magnetic field dynamics during the formation of solar AR 11190
- Onset of penumbra formation
- The formation and decay of sunspot penumbra in Active Region NOAA 12673
- Morphological study of penumbral formation
- Various Activities above Sunspot Light Bridges in IRIS Observations: Classification and Comparison
- Exploring magnetic field properties at the boundary of solar pores: A comparative study based on SDO-HMI observations
- The Decay Process of an α-configuration Sunspot