SIMULATION OF THE FORMATION OF A SOLAR ACTIVE REGION

被引:221
作者
Cheung, M. C. M. [1 ]
Rempel, M. [2 ]
Title, A. M. [1 ]
Schuessler, M. [3 ]
机构
[1] Lockheed Martin Solar & Astrophys Lab, Palo Alto, CA 94304 USA
[2] Natl Ctr Atmospher Res, High Altitude Observ, Boulder, CO 80307 USA
[3] Max Planck Inst Solar Syst Res, D-37191 Katlenburg Lindau, Germany
基金
美国国家科学基金会;
关键词
convection; magnetohydrodynamics (MHD); radiative transfer; Sun: atmosphere; Sun: photosphere; Sun: surface magnetism; sunspots; VECTOR MAGNETIC-FIELDS; FLUX TUBE EMERGENCE; CONVECTION ZONE; EMERGING FLUX; MHD SIMULATIONS; EVOLUTION; FEATURES; LOOPS; MAGNETOCONVECTION; MODEL;
D O I
10.1088/0004-637X/720/1/233
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We present a radiative magnetohydrodynamics simulation of the formation of an active region (AR) on the solar surface. The simulation models the rise of a buoyant magnetic flux bundle from a depth of 7.5 Mm in the convection zone up into the solar photosphere. The rise of the magnetic plasma in the convection zone is accompanied by predominantly horizontal expansion. Such an expansion leads to a scaling relation between the plasma density and the magnetic field strength such that B proportional to rho(1/2). The emergence of magnetic flux into the photosphere appears as a complex magnetic pattern, which results from the interaction of the rising magnetic field with the turbulent convective flows. Small-scale magnetic elements at the surface first appear, followed by their gradual coalescence into larger magnetic concentrations, which eventually results in the formation of a pair of opposite polarity spots. Although the mean flow pattern in the vicinity of the developing spots is directed radially outward, correlations between the magnetic field and velocity field fluctuations allow the spots to accumulate flux. Such correlations result from the Lorentz-force-driven, counterstreaming motion of opposite polarity fragments. The formation of the simulated AR is accompanied by transient light bridges between umbrae and umbral dots. Together with recent sunspot modeling, this work highlights the common magnetoconvective origin of umbral dots, light bridges, and penumbral filaments.
引用
收藏
页码:233 / 244
页数:12
相关论文
共 84 条
[1]   The magnetic connection between the convection zone and corona in the quiet sun [J].
Abbett, W. P. .
ASTROPHYSICAL JOURNAL, 2007, 665 (02) :1469-1488
[2]   The three-dimensional evolution of rising, twisted magnetic flux tubes in a gravitationally stratified model convection zone [J].
Abbett, WP ;
Fisher, GH ;
Fan, Y .
ASTROPHYSICAL JOURNAL, 2000, 540 (01) :548-562
[3]   Emergence of magnetic flux from the convection zone into the corona [J].
Archontis, V ;
Moreno-Insertis, F ;
Galsgaard, K ;
Hood, AW ;
O'Shea, E .
ASTRONOMY & ASTROPHYSICS, 2004, 426 (03) :1047-1063
[4]   Formation of Ellerman bombs due to 3D flux emergence [J].
Archontis, V. ;
Hood, A. W. .
ASTRONOMY & ASTROPHYSICS, 2009, 508 (03) :1469-1483
[5]   Moving dipolar features in an emerging flux region [J].
Bernasconi, PN ;
Rust, DM ;
Georgoulis, MK ;
Labonte, BJ .
SOLAR PHYSICS, 2002, 209 (01) :119-139
[6]   Penetration and overshooting in turbulent compressible convection [J].
Brummell, NH ;
Clune, TL ;
Toomre, J .
ASTROPHYSICAL JOURNAL, 2002, 570 (02) :825-854
[7]   FLUX PUMPING AND MAGNETIC FIELDS IN THE OUTER PENUMBRA OF A SUNSPOT [J].
Brummell, Nicholas H. ;
Tobias, Steven M. ;
Thomas, John H. ;
Weiss, Nigel O. .
ASTROPHYSICAL JOURNAL, 2008, 686 (02) :1454-1465
[8]   EMERGING FLUX TUBES IN THE SOLAR CONVECTION ZONE .1. ASYMMETRY, TILT, AND EMERGENCE LATITUDE [J].
CALIGARI, P ;
MORENOINSERTIS, F ;
SCHUSSLER, M .
ASTROPHYSICAL JOURNAL, 1995, 441 (02) :886-902
[9]   Emerging flux tubes in the solar convection zone.: II.: The influence of initial conditions [J].
Caligari, P ;
Schüssler, M ;
Moreno-Insertis, F .
ASTROPHYSICAL JOURNAL, 1998, 502 (01) :481-492
[10]   Emergence of small-scale magnetic loops in the quiet-Sun internetwork [J].
Centeno, R. ;
Socas-Navarro, H. ;
Lites, B. ;
Kubo, M. ;
Frank, Z. ;
Shine, R. ;
Tarbell, T. ;
Title, A. ;
Ichimoto, K. ;
Tsuneta, S. ;
Katsukawa, Y. ;
Suematsu, Y. ;
Shimizu, T. ;
Nagata, S. .
ASTROPHYSICAL JOURNAL, 2007, 666 (02) :L137-L140