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Study of the Transition from MRI to Magnetic Turbulence via Parasitic Instability by a High-order MHD Simulation Code

机译:通过高阶MHD仿真代码研究通过寄生不稳定性从MRI到电磁湍流的转变

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Magnetic turbulence in accretion disks under ideal magnetohydrodynamic (MHD) conditions is expected to be driven by the magneto-rotational instability (MRI) followed by secondary parasitic instabilities. We develop a three-dimensional ideal MHD code that can accurately resolve turbulent structures, and carry out simulations with a net vertical magnetic field in a local shearing box disk model to investigate the role of parasitic instabilities in the formation process of magnetic turbulence. Our simulations reveal that a highly anisotropic Kelvin–Helmholtz (K–H) mode parasitic instability evolves just before the first peak in turbulent stress and then breaks large-scale shear flows created by MRI. The wavenumber of the enhanced parasitic instability is larger than the theoretical estimate, because the shear flow layers sometimes become thinner than those assumed in the linear analysis. We also find that interaction between antiparallel vortices caused by the K–H mode parasitic instability induces small-scale waves that break the shear flows. On the other hand, at repeated peaks in the nonlinear phase, anisotropic wavenumber spectra are observed only in the small wavenumber region and isotropic waves dominate at large wavenumbers unlike for the first peak. Restructured channel flows due to MRI at the peaks in nonlinear phase seem to be collapsed by the advection of small-scale shear structures into the restructured flow and resultant mixing.
机译:在理想的磁流体动力学(MHD)条件下,吸积盘中的磁湍流预计将由磁旋转不稳定性(MRI)和次级寄生不稳定性所驱动。我们开发了可以精确解析湍流结构的三维理想MHD代码,并在局部剪切盒盘模型中利用净垂直磁场进行了模拟,以研究寄生不稳定性在电磁湍流形成过程中的作用。我们的模拟显示,高度各向异性的Kelvin–Helmholtz(K–H)模式寄生不稳定性会在湍流应力的第一个峰值之前发展,然后破坏MRI产生的大规模剪切流。增强的寄生不稳定性的波数大于理论估计值,因为剪切流层有时会比线性分析中假定的薄。我们还发现,由K–H模式寄生不稳定性引起的反平行涡旋之间的相互作用会引起破坏剪切流的小规模波。另一方面,在非线性相的重复峰处,仅在小波数区域中观察到各向异性波数谱,而与第一峰不同,各向同性波在大波数处占优势。 MRI在非线性阶段的峰值处产生的重组通道流似乎因小规模剪切结构向平流平流进入重组流而混合。

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