High-Resolution Simulations of Nonhelical MHD Turbulence

被引:0
|
作者
N.E.L. Haugen
A. Brandenburg
W. Dobler
机构
[1] The Norwegian University of Science and Technology,Department of Physics
[2] NORDITA,undefined
[3] Blegdamsvej 17,undefined
[4] Kiepenheuer-Institut für Sonnenphysik,undefined
来源
关键词
interstellar medium; turbulence;
D O I
暂无
中图分类号
学科分类号
摘要
According to the kinematic theory of nonhelical dynamo action, the magnetic energy spectrum increases with wavenumber and peaks at the resistive cutoff wavenumber. It has previously been argued that even in the dynamical case, the magnetic energy peaks at the resistive scale. Using high resolution simulations (up to 10243 meshpoints) with no large-scale imposed field, we show that the magnetic energy peaks at a wavenumber that is independent of the magnetic Reynolds number and about five times larger than the forcing wavenumber. Throughout the inertial range, the spectral magnetic energy exceeds the kinetic energy by a factor of two to three. Both spectra are approximately parallel. The total energy spectrum seems to be close to k−3/2, but there is a strong bottleneck effect and we suggest that the asymptotic spectrum is instead k−5/3. This is supported by the value of the second-order structure function exponent that is found to be ζ2 = 0.70, suggesting a k−1.70 spectrum. The third-order structure function scaling exponent is very close to unity,—in agreement with Goldreich–Sridhar theory.
引用
收藏
页码:53 / 60
页数:7
相关论文
共 50 条
  • [21] Case study of wave breaking with high-resolution turbulence measurements with LITOS and WRF simulations
    Schneider, Andreas
    Wagner, Johannes
    Soeder, Jens
    Gerding, Michael
    Luebken, Franz-Josef
    ATMOSPHERIC CHEMISTRY AND PHYSICS, 2017, 17 (12) : 7941 - 7954
  • [22] Ion Trapping and Acceleration at Dipolarization Fronts: High-Resolution MHD and Test-Particle Simulations
    Ukhorskiy, A. Y.
    Sorathia, K. A.
    Merkin, V. G.
    Sitnov, M. I.
    Mitchell, D. G.
    Gkioulidou, M.
    JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 2018, 123 (07) : 5580 - 5589
  • [23] High-resolution computer simulations of EKC
    Breadmore, Michael C.
    Quirino, Joselito P.
    Thormann, Wolfgang
    ELECTROPHORESIS, 2009, 30 (04) : 570 - 578
  • [24] High-resolution simulations of clusters of galaxies
    Nagai, D
    Kravtsov, AV
    SOFT X-RAY EMISSION FROM CLUSTERS OF GALAXIES AND RELATED PHENOMENA, 2004, 309 : 163 - 170
  • [25] High-resolution simulations of turbidity currents
    Biegert, Edward
    Vowinckel, Bernhard
    Ouillon, Raphael
    Meiburg, Eckart
    PROGRESS IN EARTH AND PLANETARY SCIENCE, 2017, 4
  • [26] High-resolution simulations of gravity currents
    Dept. of Mechanical Engineering, University of California, Santa Barbara, CA 93106, United States
    J. Braz. Soc. Mech. Sci. Eng., 2006, 2 (169-173):
  • [27] High-resolution simulations of LS 5039
    Kissmann, R.
    Huber, D.
    Gschwandtner, P.
    ASTRONOMY & ASTROPHYSICS, 2023, 677
  • [28] High-resolution simulations of cluster formation
    Brainerd, TG
    Goldberg, DM
    Villumsen, JV
    ASTROPHYSICAL JOURNAL, 1998, 502 (02): : 505 - 517
  • [29] High-resolution simulations of turbidity currents
    Edward Biegert
    Bernhard Vowinckel
    Raphael Ouillon
    Eckart Meiburg
    Progress in Earth and Planetary Science, 4
  • [30] The generation and dissipation of interstellar turbulence: Results from large-scale high-resolution simulations
    De Avillez, Miguel A.
    Breitschwerdt, Dieter
    ASTROPHYSICAL JOURNAL, 2007, 665 (01): : L35 - L38