Static and dynamic modeling of a solar active region

被引:51
|
作者
Warren, Harry P. [1 ]
Winebarger, Amy R.
机构
[1] USN, Res Lab, Div Space Sci, Washington, DC 20375 USA
[2] Alabama A&M Univ, Dept Phys, Normal, AL 35762 USA
关键词
sun; corona;
D O I
10.1086/519943
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Recent hydrostatic simulations of solar active regions have shown that it is possible to reproduce both the total intensity and the general morphology of the high-temperature emission observed at soft X-ray wavelengths using static heating models. These static models, however, cannot account for the lower temperature emission. In addition, there is ample observational evidence that the solar corona is highly variable, indicating a significant role for dynamical processes in coronal heating. Because they are computationally demanding, full hydrodynamic simulations of solar active regions have not been considered previously. In this paper we make first application of an impulsive heating model to the simulation of an entire active region, AR 8156 observed on 1998 February 16. We model this region by coupling potential field extrapolations to full solutions of the time-dependent hydrodynamic loop equations. To make the problem more tractable we begin with a static heating model that reproduces the emission observed in four different Yohkoh Soft X-Ray Telescope (SXT) filters and consider impulsive heating scenarios that yield time-averaged SXT intensities that are consistent with the static case. We find that it is possible to reproduce the total observed soft X-ray emission in all of the SXT filters with a dynamical heating model, indicating that nanoflare heating is consistent with the observational properties of the high-temperature solar corona. At EUV wavelengths the simulated emission shows more coronal loops, but the agreement between the simulation and the observation is still not acceptable.
引用
收藏
页码:1245 / 1255
页数:11
相关论文
共 50 条
  • [11] NONPHOTOSPHERIC ABUNDANCES IN A SOLAR ACTIVE-REGION
    WIDING, KG
    FELDMAN, U
    ASTROPHYSICAL JOURNAL, 1993, 416 (01) : 392 - &
  • [12] Parker Solar Probe detects solar radio bursts related with a behind-the-limb active region
    Stanislavsky, Aleksander A.
    Bubnov, Igor N.
    Koval, Artem A.
    Yerin, Serge N.
    ASTRONOMY & ASTROPHYSICS, 2022, 657
  • [13] Effective Gyroresonance Layers in the Transition Region of the Active Region of the Solar Atmosphere. Magnetic Fields and Heights
    Yasnov, L., V
    Bogod, V. M.
    Stupishin, A. G.
    ASTROPHYSICAL BULLETIN, 2020, 75 (01) : 50 - 58
  • [14] Hot Plasma in a Quiescent Solar Active Region as Measured by RHESSI, XRT, and AIA
    Ishikawa, Shin-nosuke
    Krucker, Saem
    ASTROPHYSICAL JOURNAL, 2019, 876 (02)
  • [15] Triggering an Eruptive Flare by Emerging Flux in a Solar Active-Region Complex
    Louis, Rohan E.
    Kliem, Bernhard
    Ravindra, B.
    Chintzoglou, Georgios
    SOLAR PHYSICS, 2015, 290 (12) : 3641 - 3662
  • [16] Coronal magnetography of a solar active region using coordinated SERTS and VLA observations
    Brosius, JW
    Davila, JM
    Thomas, RJ
    White, SM
    ASTROPHYSICAL JOURNAL, 1997, 488 (01) : 488 - 498
  • [17] ALMA observations of transient heating in a solar active region
    Santos, J. M. da Silva
    Rodriguez, J. de la Cruz
    White, S. M.
    Leenaarts, J.
    Vissers, G. J. M.
    Hansteen, V. H.
    ASTRONOMY & ASTROPHYSICS, 2020, 643
  • [18] Fundamental transverse vibrations of the active region solar corona
    Luna, M.
    Oliver, R.
    Antolin, P.
    Arregui, I.
    ASTRONOMY & ASTROPHYSICS, 2019, 629
  • [19] Energetics of magnetic transients in a solar active region plage
    Chitta, L. P.
    Sukarmadji, A. R. C.
    van der Voort, L. Rouppe
    Peter, H.
    ASTRONOMY & ASTROPHYSICS, 2019, 623
  • [20] The Role of a Magnetic Topology Skeleton in a Solar Active Region
    Guo, Juan
    Wang, Huaning
    Wang, Jingxiu
    Zhu, Xiaoshuai
    Dai, Xinghua
    Huang, Xin
    He, Han
    Yan, Yan
    Zhao, Hui
    ASTROPHYSICAL JOURNAL, 2019, 874 (02)