论文标题

从湍流到死区的过渡区域,在原行星磁盘中:局部剪切盒模拟

Transition region from turbulent to dead zone in protoplanetary disks: local shearing box simulations

论文作者

Pucci, Fulvia, Tomida, Kengo, Stone, James, Takasao, Shinsuke, Ji, Hantao, Okamura, Shoichi

论文摘要

原月球磁盘的动态演化是建立行星形成的综合理论并解释这些物体的观察性特性的关键兴趣。使用等温剪切盒设置的磁水动力学代码雅典娜++,我们研究了活跃区和死区之间的边界,在该区域中,积聚速率变化和质量可以积聚。我们量化了在径向X方向上存在非均匀欧姆电阻率的存在的湍流水平,该方向导致抑制湍流(或死区)的区域。将湍流活性与理想模拟的活性进行比较,湍流抑制区域在其边界处显示了密度波动和磁性活性,这是由活性(理想)区域边界的能量注入驱动的。我们发现,在理想区域中,磁耗散在理想区域明显更强,并且通过死区边界的湍流穿透是由电阻率本身的价值(通过欧姆耗散过程)决定的,尽管过渡的厚度在改变耗散方面并不重要。我们研究了沿着剪切方向的1D光谱:磁光谱在理想和电阻模拟的大尺度上显得平坦,尽管kolmogorov在超过十年中的缩放量在死区持续存在,这表明湍流级联反应由系统的流体动力学确定:MRI Dynamel的动作受到足够高的电阻,而这种动力却具有很高的电阻性。

The dynamical evolution of protoplanetary disks is of key interest for building a comprehensive theory of planet formation and to explain the observational properties of these objects. Using the magnetohydrodynamics code Athena++, with an isothermal shearing box setup, we study the boundary between the active and dead zone, where the accretion rate changes and mass can accumulate. We quantify how the turbulence level is affected by the presence of a non uniform ohmic resistivity in the radial-x direction that leads to a region of inhibited turbulence (or dead zone). Comparing the turbulent activity to that of ideal simulations, the turbulence inhibited area shows density fluctuations and magnetic activity at its boundaries, driven by energy injection from the active (ideal) zone boundaries. We find magnetic dissipation to be significantly stronger in the ideal regions, and the turbulence penetration through the boundary of the dead zone is determined by the value of the resistivity itself, through the ohmic dissipation process, though the thickness of the transition does not play a significant role in changing the dissipation. We investigate the 1D spectra along the shearing direction: magnetic spectra appear flat at large scales both in ideal as well as resistive simulations, though a Kolmogorov scaling over more than one decade persists in the dead zone, suggesting the turbulent cascade is determined by the hydrodynamics of the system: MRI dynamo action is inhibited where sufficiently high resistivity is present.

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