HEATING RATE SCALING OF TURBULENCE IN THE PROTON KINETIC REGIME

被引:30
|
作者
Vasquez, Bernard J. [1 ,2 ]
机构
[1] Univ New Hampshire, Dept Phys, Durham, NH 03824 USA
[2] Univ New Hampshire, Ctr Space Sci, Durham, NH 03824 USA
基金
美国国家科学基金会;
关键词
plasmas; solar wind; turbulence; SOLAR-WIND TURBULENCE; ION-CYCLOTRON WAVES; MEAN MAGNETIC-FIELD; MAGNETOHYDRODYNAMIC TURBULENCE; ALFVENIC TURBULENCE; AU; MHD TURBULENCE; POWER SPECTRA; CORONAL HOLE; MINOR IONS;
D O I
10.1088/0004-637X/806/1/33
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Three-dimensional numerical hybrid simulations with particle protons and quasi-neutralizing, fluid electrons are conducted for a freely decaying turbulence. The main results are obtained from a series of runs as a function of the initial total rms fluctuation amplitude. In the turbulent phase and at a corresponding nonlinear time dependent on the amplitude, the scaling of the proton perpendicular heating rate is examined as a function of the spectral value of the electron bulk perpendicular speed integrated in wavenumbers about the inverse thermal proton gyroradius. The perpendicular direction is relative to the background magnetic field. The obtained spectral value is normalized to the proton thermal speed and ranges from 0.06 to 0.16. The scaling of the perpendicular heating rate with this spectral value is fitted with a power law, which has an index of -3.3 +/- 0.2. The fit is consistent with the scaling of the total heating rate as a function of total rms amplitude, which has an index of -3.06 +/- 0.12. The power-law index is near the turbulent hydrodynamic-like prediction for the energy cascade rate as a function of amplitude. The heating rate, then, obeys a power law with amplitude or spectral value regardless of whether that quantity is evaluated at large scales or at the proton gyroradius scales.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] Turbulence, and Proton and Electron Heating Rates in the Solar Corona: Analytical Approach
    Adhikari, Laxman
    Zank, Gary P.
    Telloni, Daniele
    Zhao, Lingling
    Wang, Bingbing
    Webb, Gary
    Tang, Bofeng
    Nykyri, Katariina
    ASTROPHYSICAL JOURNAL, 2024, 966 (01)
  • [32] Proton Perpendicular Heating in Turbulence Simulations: Determination of the Velocity Diffusion Coefficient
    Vasquez, Bernard J.
    Isenberg, Philip A.
    Markovskii, Sergei A.
    ASTROPHYSICAL JOURNAL, 2020, 893 (01)
  • [33] Intermittent Dissipation and Heating in 3D Kinetic Plasma Turbulence
    Wan, M.
    Matthaeus, W. H.
    Roytershteyn, V.
    Karimabadi, H.
    Parashar, T.
    Wu, P.
    Shay, M.
    PHYSICAL REVIEW LETTERS, 2015, 114 (17)
  • [34] Anisotropic turbulence of kinetic Alfvén waves and heating in solar corona
    Hemam Dinesh Singh
    Bheem Singh Jatav
    ResearchinAstronomyandAstrophysics, 2019, 19 (12) : 161 - 176
  • [35] RESONANCE BROADENING AND HEATING OF CHARGED PARTICLES IN MAGNETOHYDRODYNAMIC TURBULENCE
    Lynn, Jacob W.
    Parrish, Ian J.
    Quataert, Eliot
    Chandran, Benjamin D. G.
    ASTROPHYSICAL JOURNAL, 2012, 758 (02)
  • [36] Numerical investigation of kinetic turbulence in relativistic pair plasmas - I. Turbulence statistics
    Zhdankin, Vladimir
    Uzdensky, Dmitri A.
    Werner, Gregory R.
    Begelman, Mitchell C.
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2018, 474 (02) : 2514 - 2535
  • [37] Coronal heating, weak MHD turbulence, and scaling laws
    Rappazzo, A. F.
    Velli, M.
    Einaudi, G.
    Dahlburg, R. B.
    ASTROPHYSICAL JOURNAL, 2007, 657 (01) : L47 - L51
  • [38] SOLAR WIND MAGNETOHYDRODYNAMICS TURBULENCE: ANOMALOUS SCALING AND ROLE OF INTERMITTENCY
    Salem, C.
    Mangeney, A.
    Bale, S. D.
    Veltri, P.
    ASTROPHYSICAL JOURNAL, 2009, 702 (01) : 537 - 553
  • [39] Turbulence in Relativistic Plasma - From Magnetohydrodynamic to Kinetic Regime
    Takamoto, M.
    2016 INTERNATIONAL CONFERENCE LASER OPTICS (LO), 2016,
  • [40] Nature of Kinetic Scale Turbulence in the Earth's Magnetosheath
    Chen, C. H. K.
    Boldyrev, S.
    ASTROPHYSICAL JOURNAL, 2017, 842 (02)