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首页> 外文期刊>Physics Reports: A Review Section of Physics Letters (Section C) >Rossby and drift wave turbulence and zonal flows: The Charney-Hasegawa-Mima model and its extensions
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Rossby and drift wave turbulence and zonal flows: The Charney-Hasegawa-Mima model and its extensions

机译:罗斯比和漂移波湍流和纬向流:Charney-Hasegawa-Mima模型及其扩展

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摘要

A detailed study of the Charney-Hasegawa-Mima model and its extensions is presented. These simple nonlinear partial differential equations suggested for both Rossby waves in the atmosphere and drift waves in a magnetically-confined plasma, exhibit some remarkable and nontrivial properties, which in their qualitative form, survive in more realistic and complicated models. As such, they form a conceptual basis for understanding the turbulence and zonal flow dynamics in real plasma and geophysical systems. Two idealised scenarios of generation of zonal flows by small-scale turbulence are explored: a modulational instability and turbulent cascades. A detailed study of the generation of zonal flows by the modulational instability reveals that the dynamics of this zonal flow generation mechanism differ widely depending on the initial degree of nonlinearity. The jets in the strongly nonlinear case further roll up into vortex streets and saturate, while for the weaker nonlinearities, the growth of the unstable mode reverses and the system oscillates between a dominant jet, which is slightly inclined to the zonal direction, and a dominant primary wave. A numerical proof is provided for the extra invariant in Rossby and drift wave turbulence-zonostrophy. While the theoretical derivations of this invariant stem from the wave kinetic equation which assumes weak wave amplitudes, it is shown to be relatively well-conserved for higher nonlinearities also. Together with the energy and enstrophy, these three invariants cascade into anisotropic sectors in the k-space as predicted by the Fjortoft argument. The cascades are characterised by the zonostrophy pushing the energy to the zonal scales. A small scale instability forcing applied to the model has demonstrated the well-known drift wave zonal flow feedback loop. The drift wave turbulence is generated from this primary instability. The zonal flows are then excited by either one of the generation mechanisms, extracting energy from the drift waves as they grow. Eventually the turbulence is completely suppressed and the zonal flows saturate. The turbulence spectrum is shown to diffuse in a manner which has been mathematically predicted. The insights gained from this simple model could provide a basis for equivalent studies in more sophisticated plasma and geophysical fluid dynamics models in an effort to fully understand the zonal flow generation, the turbulent transport suppression and the zonal flow saturation processes in both the plasma and geophysical contexts as well as other wave and turbulence systems where order evolves from chaos. (C) 2015 Elsevier B.V. All rights reserved.
机译:给出了Charney-Hasegawa-Mima模型及其扩展的详细研究。这些简单的非线性偏微分方程对于大气中的Rossby波和磁约束等离子体中的漂移波均具有某些显着且非平凡的性质,以定性形式存在于更现实和复杂的模型中。因此,它们构成了理解真实等离子体和地球物理系统中湍流和纬向流动动力学的概念基础。探索了由小规模湍流产生纬向流的两种理想情况:调制不稳定性和湍流级联。对通过调制不稳定性产生的纬向流进行的详细研究表明,这种纬向流生成机制的动力学因初始非线性程度而有很大差异。在强非线性情况下的射流进一步卷起进入涡街并达到饱和,而对于较弱的非线性,不稳定模式的增长逆转,并且系统在主要向纬向倾斜的主导射流和主导射流之间振荡。初级波。为Rossby和漂移波湍流-区域涡旋中的额外不变量提供了数值证明。尽管该不变性的理论推导是基于假设波动幅度较小的波动方程,但对于较高的非线性也显示出了相对较好的守恒性。正如Fjortoft论证所预言的那样,连同能量和涡旋,这三个不变量在k空间中级联为各向异性扇区。级联的特征是区域营养层将能量推向区域尺度。对模型的小规模不稳定性强迫已经证明了众所周知的漂移波区域流反馈回路。漂移波湍流是由这种主要的不稳定性产生的。然后通过任一生成机制激发地层流,并随着漂移波的增长从中提取能量。最终,湍流被完全抑制,纬向流饱和。湍流频谱显示为以数学上预测的方式扩散。从这个简单的模型中获得的见解可以为更复杂的等离子体和地球物理流体动力学模型中的等效研究提供基础,以全面了解等离子体和地球物理中的纬向流产生,湍流输运抑制和纬向流饱和过程。背景以及其他秩序从混乱演变而来的波浪和湍流系统。 (C)2015 Elsevier B.V.保留所有权利。

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