论文标题
辐射扩散对三维原始磁盘动力学旋转扭矩的影响
Effects of Radiative Diffusion on the Dynamical Corotation Torque in Three-Dimensional Protoplanetary Disks
论文作者
论文摘要
由马蹄形轨道的变形以及背景磁盘中的涡度梯度引起的动力学旋转扭矩对于确定轨道迁移速率和低质量行星的方向很重要。先前的二维研究预测,动力学旋转扭矩为正,从而减速了内向行星的迁移。相比之下,最近的三维研究表明,浮力共振使动力学旋转扭矩为阴性,从而加速了内向迁移。在本文中,我们使用三维模拟研究了动力学旋转扭矩对热传输的依赖性。我们首先表明,当磁盘完全绝热时,我们的结果与以前的三维研究一致。然而,在更现实的辐射盘中,辐射扩散会显着抑制浮力共振,尤其是在高海拔区域,并产生正动力学旋转扭矩。这减轻了由于绝热磁盘的负动力学旋转扭矩引起的快速迁移问题。我们的结果表明,需要辐射扩散以及恒星照射和积聚加热,以准确描述低质量行星的迁移。
The dynamical corotation torque arising from the deformation of the horseshoe orbits, along with the vortensity gradient in the background disk, is important for determining orbital migration rate and direction of low-mass planets. Previous two-dimensional studies predicted that the dynamical corotation torque is positive, decelerating the inward planet migration. In contrast, recent three-dimensional studies have shown that buoyancy resonance makes the dynamical corotation torque negative, accelerating the inward migration. In this paper, we study the dependence of the dynamical corotation torque on the thermal transport using three-dimensional simulations. We first show that our results are consistent with previous three-dimensional studies when the disk is fully adiabatic. In more realistic radiative disks, however, radiative diffusion suppresses the buoyancy resonance significantly, especially at high-altitude regions, and yields a positive dynamical corotation torque. This alleviates the issue of a rapid migration caused by the negative dynamical corotation torque in the adiabatic disks. Our results suggest that radiative diffusion together with stellar irradiation and accretion heating is needed to accurately describe the migration of low-mass planets.