Simulating Rayleigh-Taylor induced magnetohydrodynamic turbulence in prominences

被引:4
作者
Changmai, M. [1 ]
Jenkins, J. M. [1 ]
Durrive, J. B. [1 ]
Keppens, R. [1 ]
机构
[1] Katholieke Univ Leuven, Ctr Math Plasma Astrophys, Celestijnenlaan 200B, B-3001 Leuven, Belgium
基金
欧洲研究理事会;
关键词
magnetohydrodynamics (MHD); Sun:; filaments; prominences; Sun: atmosphere; methods: numerical; instabilities; turbulence; EXTENDED SELF-SIMILARITY; MAGNETIC-FIELD VECTOR; SOLAR PROMINENCES; NUMERICAL SIMULATIONS; MPI-AMRVAC; PROBABILITY DENSITY; SCALING PROPERTIES; INSTABILITY; DYNAMICS; PLASMA;
D O I
10.1051/0004-6361/202243034
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Aims. Solar prominences are large-scale condensations suspended against gravity within the solar atmosphere. The Rayleigh-Taylor (RT) instability is proposed to be one of the fundamental processes that lead to the generation of dynamics at many spatial and temporal scales within these long-lived, cool, and dense structures, which are located in the solar corona. We aim to study such turbulent processes using high-resolution, direct numerical simulations of solar prominences. Methods. We ran 2.5D ideal magnetohydrodynamic (MHD) simulations with the open-source MPI-AMRVAC code far into the nonlinear evolution of an RT instability perturbed at the prominence-corona interface. Our simulation achieves a resolution down to similar to 23 km on a 2D (x, y) domain of size 30 Mm x 30 Mm. We followed the instability transitioning from a multimode linear perturbation to its nonlinear, fully turbulent state. Over the succeeding similar to 25 min period, we performed a statistical analysis of the prominence at a cadence of similar to 0.858 s. Results. We find that the dominant guiding component, B-z, induces coherent structure formation predominantly in the vertical velocity component, V-y, consistent with observations, indicating an anisotropic turbulence state within our prominence. We find power-law scalings in the inertial range for the velocity, magnetic, and temperature fields. The presence of intermittency is evident from the probability density functions of the field fluctuations, which depart from Gaussianity as we consider smaller and smaller scales. In exact agreement, the higher-order structure functions quantify the multi-fractality, as do different scale characteristics and the behavior between the longitudinal and transverse directions. Thus, the statistics remain consistent with conclusions from previous observational studies, enabling us to directly relate the RT instability to the turbulent characteristics found within quiescent prominences.
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页数:20
相关论文
共 91 条
[1]   HIGH-ORDER VELOCITY STRUCTURE FUNCTIONS IN TURBULENT SHEAR FLOWS [J].
ANSELMET, F ;
GAGNE, Y ;
HOPFINGER, EJ ;
ANTONIA, RA .
JOURNAL OF FLUID MECHANICS, 1984, 140 (MAR) :63-89
[2]   Emergence of a flux tube through a partially ionized solar atmosphere [J].
Arber, T. D. ;
Haynes, M. ;
Leake, J. E. .
ASTROPHYSICAL JOURNAL, 2007, 666 (01) :541-546
[3]   EXTENDED SELF-SIMILARITY IN TURBULENT FLOWS [J].
BENZI, R ;
CILIBERTO, S ;
TRIPICCIONE, R ;
BAUDET, C ;
MASSAIOLI, F ;
SUCCI, S .
PHYSICAL REVIEW E, 1993, 48 (01) :R29-R32
[4]   Magneto-thermal convection in solar prominences [J].
Berger, Thomas ;
Testa, Paola ;
Hillier, Andrew ;
Boerner, Paul ;
Low, Boon Chye ;
Shibata, Kazunari ;
Schrijver, Carolus ;
Tarbell, Ted ;
Title, Alan .
NATURE, 2011, 472 (7342) :197-200
[5]   Hinode SOT observations of solar quiescent prominence dynamics [J].
Berger, Thomas E. ;
Shine, Richard A. ;
Slater, Gregory L. ;
Tarbell, Theodore D. ;
Title, Alan M. ;
Okamoto, Takenori J. ;
Ichimoto, Kiyoshi ;
Katsukawa, Yukio ;
Suematsu, Yoshinori ;
Tsuneta, Saku ;
Lites, Bruce W. ;
Shimizu, Toshifumi .
ASTROPHYSICAL JOURNAL LETTERS, 2008, 676 (01) :L89-L92
[6]   QUIESCENT PROMINENCE DYNAMICS OBSERVED WITH THE HINODE SOLAR OPTICAL TELESCOPE. I. TURBULENT UPFLOW PLUMES [J].
Berger, Thomas E. ;
Slater, Gregory ;
Hurlburt, Neal ;
Shine, Richard ;
Tarbell, Theodore ;
Title, Alan ;
Lites, Bruce W. ;
Okamoto, Takenori J. ;
Ichimoto, Kiyoshi ;
Katsukawa, Yukio ;
Magara, Tetsuya ;
Suematsu, Yoshinori ;
Shimizu, Toshifumi .
ASTROPHYSICAL JOURNAL, 2010, 716 (02) :1288-1307
[7]   Beyond scaling and locality in turbulence [J].
Bershadskii, Alexander .
JOURNAL OF STATISTICAL PHYSICS, 2007, 128 (03) :721-739
[8]   Scaling properties of three-dimensional isotropic magnetohydrodynamic turbulence [J].
Biskamp, D ;
Müller, WC .
PHYSICS OF PLASMAS, 2000, 7 (12) :4889-4900
[9]  
Biskamp D., 2003, Magnetohydrodynamic Turbulence
[10]  
Bommier V, 1998, ASTR SOC P, V150, P434