MULTI-WAVELENGTH OBSERVATIONS OF THE SPATIO-TEMPORAL EVOLUTION OF SOLAR FLARES WITH AIA/SDO. II. HYDRODYNAMIC SCALING LAWS AND THERMAL ENERGIES

被引:24
作者
Aschwanden, Markus J. [1 ]
Shimizu, Toshifumi [2 ]
机构
[1] Org ADBS, Lockheed Martin Adv Technol Ctr, Palo Alto, CA 94304 USA
[2] Japan Aerosp Explorat Agcy, Inst Space & Astronaut Sci, Chuo Ku, Sagamihara, Kanagawa 2525210, Japan
关键词
hydrodynamics; Sun: flares; Sun: UV radiation; EMISSION MEASURE DISTRIBUTION; SELF-ORGANIZED CRITICALITY; X-RAY OBSERVATIONS; STELLAR FLARES; CORONAL LOOPS; QUIET SUN; FLARING LOOPS; ACTIVE-REGION; TRANSIENT BRIGHTENINGS; PHYSICAL PARAMETERS;
D O I
10.1088/0004-637X/776/2/132
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
In this study we measure physical parameters of the same set of 155 M- and X-class solar flares observed with AIA/SDO as analyzed in Paper I, by performing a differential emission measure analysis to determine the flare peak emission measure EMp, peak temperature T-p, electron density n(p), and thermal energy E-th, in addition to the spatial scales L, areas A, and volumes V measured in Paper I. The parameter ranges for M- and X-class flares are log(EMp) = 47.0-50.5, T-p = 5.0-17.8 MK, n(p) = 4 x 10(9)-9 x 10(11) cm(-3), and thermal energies of E-th = 1.6x10(28)-1.1x10(32) erg. We find that these parameters obey the Rosner-Tucker-Vaiana (RTV) scaling law T-p(2) proportional to n(p)L and H proportional to (TL-2)-L-7/2 during the peak time t(p) of the flare density n(p), when energy balance between the heating rate H and the conductive and radiative loss rates is achieved for a short instant and thus enables the applicability of the RTV scaling law. The application of the RTV scaling law predicts power-law distributions for all physical parameters, which we demonstrate with numerical Monte Carlo simulations as well as with analytical calculations. A consequence of the RTV law is also that we can retrieve the size distribution of heating rates, for which we find N(H) proportional to H-1.8, which is consistent with the magnetic flux distribution N(Phi) proportional to Phi(-1.85) observed by Parnell et al. and the heating flux scaling law F-H proportional to HL proportional to B/L of Schrijver et al.. The fractal-diffusive self-organized criticality model in conjunction with the RTV scaling law reproduces the observed power-law distributions and their slopes for all geometrical and physical parameters and can be used to predict the size distributions for other flare data sets, instruments, and detection algorithms.
引用
收藏
页数:25
相关论文
共 61 条
  • [1] A statistical fractal-diffusive avalanche model of a slowly-driven self-organized criticality system
    Aschwanden, M. J.
    [J]. ASTRONOMY & ASTROPHYSICS, 2012, 539
  • [2] Aschwanden M. J., 2013, SOPH IN PRESS
  • [3] Scaling laws of solar and stellar flares
    Aschwanden, Markus J.
    Stern, Robert A.
    Guedel, Manuel
    [J]. ASTROPHYSICAL JOURNAL, 2008, 672 (01) : 659 - 673
  • [4] MULTI-WAVELENGTH OBSERVATIONS OF THE SPATIO-TEMPORAL EVOLUTION OF SOLAR FLARES WITH AIA/SDO. I. UNIVERSAL SCALING LAWS OF SPACE AND TIME PARAMETERS
    Aschwanden, Markus J.
    Zhang, Jie
    Liu, Kai
    [J]. ASTROPHYSICAL JOURNAL, 2013, 775 (01)
  • [5] THE SPATIO-TEMPORAL EVOLUTION OF SOLAR FLARES OBSERVED WITH AIA/SDO: FRACTAL DIFFUSION, SUB-DIFFUSION, OR LOGISTIC GROWTH?
    Aschwanden, Markus J.
    [J]. ASTROPHYSICAL JOURNAL, 2012, 757 (01)
  • [6] SOLAR CORONA LOOP STUDIES WITH THE ATMOSPHERIC IMAGING ASSEMBLY. I. CROSS-SECTIONAL TEMPERATURE STRUCTURE
    Aschwanden, Markus J.
    Boerner, Paul
    [J]. ASTROPHYSICAL JOURNAL, 2011, 732 (02)
  • [7] THE HYDRODYNAMIC EVOLUTION OF IMPULSIVELY HEATED CORONAL LOOPS: EXPLICIT ANALYTICAL APPROXIMATIONS
    Aschwanden, Markus J.
    Tsiklauri, David
    [J]. ASTROPHYSICAL JOURNAL SUPPLEMENT SERIES, 2009, 185 (01) : 171 - 185
  • [8] Time variability of the "quiet" Sun observed with TRACE.: II.: Physical parameters, temperature evolution, and energetics of extreme-ultraviolet nanoflares
    Aschwanden, MJ
    Tarbell, TD
    Nightingale, RW
    Schrijver, CJ
    Title, A
    Kankelborg, CC
    Martens, P
    Warren, HP
    [J]. ASTROPHYSICAL JOURNAL, 2000, 535 (02) : 1047 - 1065
  • [9] Do EUV nanoflares account for coronal heating?
    Aschwanden, MJ
    [J]. SOLAR PHYSICS, 1999, 190 (1-2) : 233 - 247
  • [10] Aschwanden MJ, 2001, SOL PHYS, V204, P93