GLOBAL SIMULATION OF AN EXTREME ULTRAVIOLET IMAGING TELESCOPE WAVE

被引:66
作者
Schmidt, J. M. [1 ]
Ofman, L.
机构
[1] Catholic Univ Amer, Greenbelt, MD 20771 USA
关键词
magnetohydrodynamics (MHD); shock waves; Sun: corona; Sun: coronal mass ejections (CMEs); Sun: helioseismology; Sun: surface magnetism; CORONAL LOOP OSCILLATIONS; DOPPLER-SHIFT OSCILLATIONS; BRAGG CRYSTAL SPECTROMETER; NUMERICAL SIMULATIONS; TRANSVERSE OSCILLATIONS; ALFVEN WAVES; VERTICAL OSCILLATIONS; STANDING WAVES; MHD WAVES; PROPAGATING DISTURBANCE;
D O I
10.1088/0004-637X/713/2/1008
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We use the observation of an Extreme Ultraviolet Imaging Telescope (EIT) wave in the lower solar corona, seen with the two Solar Terrestrial Relations Observatory (STEREO) spacecraft in extreme ultraviolet light on 2007 May 19, to model the same event with a three-dimensional (3D) time-depending magnetohydrodynamic (MHD) code that includes solar coronal magnetic fields derived with Wilcox Solar Observatory magnetogram data, and a solar wind outflow accelerated with empirical heating functions. The model includes a coronal mass ejection (CME) of Gibson and Low flux rope type above the reconstructed active region with parameters adapted from observations to excite the EIT wave. We trace the EIT wave running as circular velocity enhancement around the launching site of the CME in the direction tangential to the sphere produced by the wave front, and compute the phase velocities of the wave front. We find that the phase velocities are in good agreement with theoretical values for a fast magnetosonic wave, derived with the physical parameters of the model, and with observed phase speeds of an incident EIT wave reflected by a coronal hole and running at about the same location. We also produce in our 3D MHD model the observed reflection of the EIT wave at the coronal hole boundary, triggered by the magnetic pressure difference between the wave front hitting the hole and the boundary magnetic fields of the coronal hole, and the response of the coronal hole, which leads to the generation of secondary reflected EIT waves radiating away in different directions than the incident EIT wave. This is the first 3D MHD model of an EIT wave triggered by a CME that includes realistic solarmagnetic field, with results comparing favorably to STEREO Extreme Ultraviolet Imager observations.
引用
收藏
页码:1008 / 1015
页数:8
相关论文
共 84 条
[51]   A three-dimensional model of the solar wind incorporating solar magnetogram observations [J].
Roussev, II ;
Gombosi, TI ;
Sokolov, IV ;
Velli, M ;
Manchester, W ;
DeZeeuw, DL ;
Liewer, P ;
Tóth, G ;
Luhmann, J .
ASTROPHYSICAL JOURNAL, 2003, 595 (01) :L57-L61
[52]   The damping of coronal loop oscillations [J].
Ruderman, MS ;
Roberts, B .
ASTROPHYSICAL JOURNAL, 2002, 577 (01) :475-486
[53]   Simulation of a collision between shock waves and a magnetic flux tube: Excitation of surface Alfven waves and body Alfven waves [J].
Sakai, JI ;
Kawata, T ;
Yoshida, K ;
Furusawa, K ;
Cramer, NF .
ASTROPHYSICAL JOURNAL, 2000, 537 (02) :1063-1072
[54]   Numerical simulations of slow standing waves in a curved solar coronal loop [J].
Selwa, M. ;
Ofman, L. ;
Murawski, K. .
ASTROPHYSICAL JOURNAL, 2007, 668 (01) :L83-L86
[55]   Numerical simulations of vertical oscillations of a solar coronal loop [J].
Selwa, M ;
Murawski, K ;
Solanki, SK ;
Wang, TJ ;
Tóth, G .
ASTRONOMY & ASTROPHYSICS, 2005, 440 (01) :385-390
[56]   Excitation and damping of slow magnetosonic standing waves in a solar coronal loop [J].
Selwa, M ;
Murawski, K ;
Solanki, SK .
ASTRONOMY & ASTROPHYSICS, 2005, 436 (02) :701-709
[57]   Three-dimensional numerical simulations of impulsively generated MHD waves in solar coronal loops [J].
Selwa, M ;
Murawski, K ;
Kowal, G .
ASTRONOMY & ASTROPHYSICS, 2004, 422 (03) :1067-1072
[58]   3-D numerical simulations of coronal loops oscillations [J].
Selwa, M. ;
Ofman, L. .
ANNALES GEOPHYSICAE, 2009, 27 (10) :3899-3908
[59]  
Smith S. F., 1971, Physics of the solar corona, P156
[60]   Footpoint excitation of standing acoustic waves in coronal loops [J].
Taroyan, Y ;
Erdélyi, R ;
Doyle, JG ;
Bradshaw, SJ .
ASTRONOMY & ASTROPHYSICS, 2005, 438 (02) :713-U44