Magnetic flux concentrations from turbulent stratified convection

被引:24
|
作者
Kapyla, P. J. [1 ,2 ,3 ,4 ]
Brandenburg, A. [3 ,4 ,5 ,6 ,7 ,8 ]
Kleeorin, N. [3 ,4 ,9 ]
Kapyla, M. J. [1 ]
Rogachevskii, I. [3 ,4 ,9 ]
机构
[1] Aalto Univ, Dept Comp Sci, ReSoLVE Ctr Excellence, POB 15400, Aalto 00076, Finland
[2] Univ Helsinki, Dept Phys, Gustaf Hallstromin Katu 2a,POB 64, Helsinki 00014, Finland
[3] KTH Royal Inst Technol, NORDITA, Roslagstullsbacken 23, S-10691 Stockholm, Sweden
[4] Stockholm Univ, Roslagstullsbacken 23, S-10691 Stockholm, Sweden
[5] Stockholm Univ, AlbaNova Univ Ctr, Dept Astron, S-10691 Stockholm, Sweden
[6] Univ Colorado, JILA, Boulder, CO 80303 USA
[7] Univ Colorado, Dept Astrophys & Planetary Sci, Box 440, Boulder, CO 80303 USA
[8] Lab Atmospher & Space Phys, 3665 Discovery Dr, Boulder, CO 80303 USA
[9] Ben Gurion Univ Negev, Dept Mech Engn, POB 653, IL-84105 Beer Sheva, Israel
来源
ASTRONOMY & ASTROPHYSICS | 2016年 / 588卷
基金
芬兰科学院; 瑞典研究理事会;
关键词
convection; turbulence; sunspots; LARGE-EDDY SIMULATIONS; NEAR-SURFACE SHEAR; MERIDIONAL CIRCULATION; SOLAR CONVECTION; DIFFERENTIAL ROTATION; DYNAMO ACTION; MAGNETOHYDRODYNAMIC TURBULENCE; PRESSURE INSTABILITY; TRANSPORT DYNAMO; FIELD;
D O I
10.1051/0004-6361/201527731
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Context. The formation of magnetic flux concentrations within the solar convection zone leading to sunspot formation is unexplained. Aims. We study the self-organization of initially uniform sub-equipartition magnetic fields by highly stratified turbulent convection. Methods. We perform simulations of magnetoconvection in Cartesian domains representing the uppermost 8 : 5 24 Mm of the solar convection zone with the horizontal size of the domain varying between 34 and 96 Mm. The density contrast in the 24 Mm deep models is more than 3 x 10(3) or eight density scale heights, corresponding to a little over 12 pressure scale heights. We impose either a vertical or a horizontal uniform magnetic field in a convection-driven turbulent flow in set-ups where no small-scale dynamos are present. In the most highly stratified cases we employ the reduced sound speed method to relax the time step constraint arising from the high sound speed in the deep layers. We model radiation via the diffusion approximation and neglect detailed radiative transfer in order to concentrate on purely magnetohydrodynamic effects. Results. We find that super-equipartition magnetic flux concentrations are formed near the surface in cases with moderate and high density stratification, corresponding to domain depths of 12 : 5 and 24 Mm. The size of the concentrations increases as the box size increases and the largest structures (20 Mm horizontally near the surface) are obtained in the models that are 24 Mm deep. The field strength in the concentrations is in the range of 3-5 kG, almost independent of the magnitude of the imposed field. The amplitude of the concentrations grows approximately linearly in time. The effective magnetic pressure measured in the simulations is positive near the surface and negative in the bulk of the convection zone. Its derivative with respect to the mean magnetic field, however, is positive in most of the domain, which is unfavourable for the operation of the negative effective magnetic pressure instability (NEMPI). Simulations in which a passive vector field is evolved do not show a noticeable difference from magnetohydrodynamic runs in terms of the growth of the structures. Furthermore, we find that magnetic flux is concentrated in regions of converging flow corresponding to large-scale supergranulation convection pattern. Conclusions. The linear growth of large-scale flux concentrations implies that their dominant formation process is a tangling of the large-scale field rather than an instability. One plausible mechanism that can explain both the linear growth and the concentration of the flux in the regions of converging flow pattern is flux expulsion. A possible reason for the absence of NEMPI is that the derivative of the effective magnetic pressure with respect to the mean magnetic field has an unfavourable sign. Furthermore, there may not be sufficient scale separation, which is required for NEMPI to work.
引用
收藏
页数:13
相关论文
共 50 条
  • [41] Pumping of magnetic fields by turbulent penetrative convection
    Tobias, SM
    Brummell, NH
    Clune, TL
    Toomre, J
    ASTROPHYSICAL JOURNAL, 1998, 502 (02): : L177 - L180
  • [42] The energy flux spectrum of internal waves generated by turbulent convection
    Couston, Louis-Alexandre
    Lecoanet, Daniel
    Favier, Benjamin
    Le Bars, Michael
    JOURNAL OF FLUID MECHANICS, 2018, 854 : R3
  • [43] CONSTANT FLUX, TURBULENT CONVECTION DATA USING INFRARED IMAGING
    LEE, AHW
    KLEIN, DE
    LAMB, JP
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1994, 37 (03) : 535 - 539
  • [44] Negative effective magnetic pressure in turbulent convection
    Kapyla, P. J.
    Brandenburg, A.
    Kleeorin, N.
    Mantere, M. J.
    Rogachevskii, I.
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2012, 422 (03) : 2465 - 2473
  • [45] Magnetic flux concentrations in a polytropic atmosphere
    Losada, I. R.
    Brandenburg, A.
    Kleeorin, N.
    Rogachevskii, I.
    ASTRONOMY & ASTROPHYSICS, 2014, 564
  • [46] Turbulent free convection from a vertical surface - A case of constant heat flux as a coupled problem
    Subbarayudu, K
    Selvaraju, A
    HEAT TRANSFER 1998, VOL 3: GENERAL PAPERS, 1998, : 405 - 409
  • [47] Hinode observations of horizontal quiet Sun magnetic flux and the "Hidden Turbulent Magnetic Flux"
    Lites, Bruce
    Socas-Navarro, Hector
    Kubo, Masahito
    Berger, Thomas E.
    Frank, Zoe
    Shine, Richard A.
    Tarbell, Theodore D.
    Title, Alan M.
    Ichimoto, Kiyoshi
    Katsukawa, Yukio
    Tsuneta, Saku
    Suematsu, Yoshinori
    Shimizu, Toshifumi
    Nagata, Shin'ichi
    PUBLICATIONS OF THE ASTRONOMICAL SOCIETY OF JAPAN, 2007, 59 : S571 - S576
  • [48] Hinode observations of horizontal quiet sun magnetic flux and the hidden turbulent magnetic flux
    Lltes, Bruce
    Socas-Navarro, Hector
    Kubo, Masahito
    Berger, Thomas E.
    Frank, Zoe
    Shine, Richard A.
    Tarbell, Theodore D.
    Title, Alan M.
    Ichimoto, Kiyoshi
    Katsukawa, Yukio
    Tsuneta, Saku
    Suematsu, Yoshinori
    Shimizu, Toshifumi
    Nagata, ShiN'Ichi
    Publications of the Astronomical Society of Japan, 2007, 59 (SPEC. ISS. 3)
  • [49] Turbulent dynamos with advective magnetic helicity flux
    Del Sordo, F.
    Guerrero, G.
    Brandenburg, A.
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2013, 429 (02) : 1686 - 1694
  • [50] Turbulent Natural Convection Flow on a Heated Vertical Wall Immersed in a Stratified Atmosphere
    Kulkarni, A. K.
    Chou, S. L.
    JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 1989, 111 (1-4): : 378 - 384