Energy cascade rate in isothermal compressible magnetohydrodynamic turbulence

IF 2.5 3区 物理与天体物理 Q2 PHYSICS, FLUIDS & PLASMAS Journal of Plasma Physics Pub Date : 2018-02-15 DOI:10.1017/S0022377818000788
N. Andr'es, F. Sahraoui, S. Galtier, L. Hadid, P. Dmitruk, P. Mininni
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引用次数: 26

Abstract

Three-dimensional direct numerical simulations are used to study the energy cascade rate in isothermal compressible magnetohydrodynamic turbulence. Our analysis is guided by a two-point exact law derived recently for this problem in which flux, source, hybrid and mixed terms are present. The relative importance of each term is studied for different initial subsonic Mach numbers$M_{S}$and different magnetic guide fields$\boldsymbol{B}_{0}$. The dominant contribution to the energy cascade rate comes from the compressible flux, which depends weakly on the magnetic guide field$\boldsymbol{B}_{0}$, unlike the other terms whose moduli increase significantly with$M_{S}$and$\boldsymbol{B}_{0}$. In particular, for strong$\boldsymbol{B}_{0}$the source and hybrid terms are dominant at small scales with almost the same amplitude but with a different sign. A statistical analysis undertaken with an isotropic decomposition based on the SO(3) rotation group is shown to generate spurious results in the presence of$\boldsymbol{B}_{0}$, when compared with an axisymmetric decomposition better suited to the geometry of the problem. Our numerical results are compared with previous analyses made within situmeasurements in the solar wind and the terrestrial magnetosheath.
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等温可压缩磁流体湍流中的能量级联速率
采用三维直接数值模拟方法研究了等温可压缩磁流体动力学湍流中的能量级联速率。我们的分析以最近针对这个问题导出的两点精确定律为指导,其中存在通量、源、混合项和混合项。研究了不同初始亚音速马赫数$M_{S}$和不同导磁场$\boldsymbol下每个项的相对重要性{B}_{0}$。对能量级联速率的主要贡献来自可压缩通量,它弱地依赖于磁引导场$\boldsymbol{B}_{0}$,与模量随$M_{S}$和$\boldsymbol显著增加的其他项不同{B}_{0}$。特别是对于强$\boldsymbol{B}_{0}$源项和混合项在小尺度上占主导地位,振幅几乎相同,但符号不同。使用基于SO(3)旋转群的各向同性分解进行的统计分析表明,在$\boldsymbol存在的情况下,会产生虚假结果{B}_{0}$,与更适合问题几何结构的轴对称分解相比。我们的数值结果与之前在太阳风和地球磁鞘的现场测量中进行的分析进行了比较。
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来源期刊
Journal of Plasma Physics
Journal of Plasma Physics 物理-物理:流体与等离子体
CiteScore
3.50
自引率
16.00%
发文量
106
审稿时长
6-12 weeks
期刊介绍: JPP aspires to be the intellectual home of those who think of plasma physics as a fundamental discipline. The journal focuses on publishing research on laboratory plasmas (including magnetically confined and inertial fusion plasmas), space physics and plasma astrophysics that takes advantage of the rapid ongoing progress in instrumentation and computing to advance fundamental understanding of multiscale plasma physics. The Journal welcomes submissions of analytical, numerical, observational and experimental work: both original research and tutorial- or review-style papers, as well as proposals for its Lecture Notes series.
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