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首页> 外文期刊>The Astrophysical journal >SELF-SUSTAINED IONIZATION AND VANISHING DEAD ZONES IN PROTOPLANETARY DISKS
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SELF-SUSTAINED IONIZATION AND VANISHING DEAD ZONES IN PROTOPLANETARY DISKS

机译:原始盘中的自持电离和消失死区

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摘要

We analyze the ionization state of the magnetohydrodynamically turbulent protoplanetary disks and propose a new mechanism of sustaining ionization. First, we show that in the quasi-steady state of turbulence driven by magnetorotational instability in a typical protoplanetary disk with dust grains, the amount of energy dissipation should be sufficient for providing the ionization energy that is required for activating magnetorotational instability. Second, we show that in the disk with dust grains the energetic electrons that compose electric currents in weakly ionized gas can provide collisional ionization, depending on the actual saturation state of magnetorotational turbulence. On the other hand, we show that in the protoplanetary disks with the reduced effect of dust grains, the turbulent motion can homogenize the ionization degree, which can activate magnetorotational instability even in the absence of other ionization processes. The results in this Letter indicate that most of the regions in protoplanetary disks remain magnetically active, and we thus require a change in the theoretical modeling of planet formation.
机译:我们分析了磁流体动力学湍流原行星盘的电离状态,并提出了一种维持电离的新机制。首先,我们表明,在典型的带有尘埃颗粒的原行星盘中,在由磁旋转不稳定性驱动的准稳态湍流中,能量耗散量应足以提供激活磁旋转不稳定性所需的电离能。其次,我们表明在带有尘埃颗粒的圆盘中,在弱电离气体中组成电流的高能电子可以提供碰撞电离,具体取决于磁旋转湍流的实际饱和状态。另一方面,我们表明在尘埃效应减小的原行星盘中,湍流运动可以使电离度均匀化,即使没有其他电离过程,也可以激活磁旋转不稳定性。这封信中的结果表明,原行星盘中的大多数区域仍保持磁性活动,因此我们需要改变行星形成的理论模型。

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