摘要: The outer protoplanetary disks (PPDs) can be subject to the magnetorotational
instability (MRI) and the vertical shear instability (VSI). While both
processes can drive turbulence in the disk, existing numerical simulations have
studied them separately. In this paper, we conduct global 3D non-ideal
magnetohydrodynamic (MHD) simulations for outer PPDs with ambipolar diffusion
and instantaneous cooling, and hence conductive to both instabilities. Given
the range of ambipolar Els\"{a}sser numbers ($Am$) explored, it is found that
the VSI turbulence dominates over the MRI when ambipolar diffusion is strong
($Am=0.1$); the VSI and MRI can co-exist for $Am=1$; and the VSI is overwhelmed
by the MRI when ambipolar diffusion is weak ($Am=10$). Angular momentum
transport process is primarily driven by MHD winds, while viscous accretion due
to MRI and/or VSI turbulence makes a moderate contribution in most cases.
Spontaneous magnetic flux concentration and formation of annular substructures
remain robust in strong ambipolar diffusion dominated disks ($Am\leq1$) with
the presence of the VSI. Ambipolar diffusion is the major contributor to the
magnetic flux concentration phenomenon rather than advection.