One-armed spirals in locally isothermal, radially structured self-gravitating discs
arXiv:1502.02662 · doi:10.1093/mnras/stv254
Abstract
We describe a new mechanism that leads to the destabilisation of non-axisymmetric waves in astrophysical discs with an imposed radial temperature gradient. This might apply, for example, to the outer parts of protoplanetary discs. We use linear density wave theory to show that non-axisymmetric perturbations generally do not conserve their angular momentum in the presence of a forced temperature gradient. This implies an exchange of angular momentum between linear perturbations and the background disc. In particular, when the disturbance is a low-frequency trailing wave and the disc temperature decreases outwards, this interaction is unstable and leads to the growth of the wave. We demonstrate this phenomenon through numerical hydrodynamic simulations of locally isothermal discs in 2D using the FARGO code and in 3D with the ZEUS-MP and PLUTO codes. We consider radially structured discs with a self-gravitating region which remains stable in the absence of a temperature gradient. However, when a temperature gradient is imposed we observe exponential growth of a one-armed spiral mode (azimuthal wavenumber ) with co-rotation radius outside the bulk of the spiral arm, resulting in a nearly-stationary one-armed spiral pattern. The development of this one-armed spiral does not require the movement of the central star, as found in previous studies. Because destabilisation by a forced temperature gradient does not explicitly require disc self-gravity, we suggest this mechanism may also affect low-frequency one-armed oscillations in non-self-gravitating discs.
15 pages, accepted by MNRAS
References in corpus (15)
- PLUTO: a Numerical Code for Computational Astrophysics
- The Two Modes of Gas Giant Planet Formation
- Direct Imaging of Fine Structures in Giant Planet Forming Regions of the Protoplanetary Disk around AB Aurigae
- Dead Zone Accretion Flows in Protostellar Disks
- Type I planetary migration in a self-gravitating disk
- Can giant planets form by gravitational fragmentation of discs?
- Properties of gravitoturbulent accretion disks
- Treating gravity in thin disk simulations
- Accretion Outbursts in Self-gravitating Protoplanetary Disks
- Spiral arms in the disk of HD 142527 from CO emission lines with ALMA
- Effects of radiation transfer on the structure of self-gravitating disks, their fragmentation and evolution of the fragments
- SEEDS Adaptive Optics Imaging of the Asymmetric Transition Disk Oph IRS 48 in Scattered Light
- How to Detect the Signatures of Self-Gravitating Circumstellar Discs with the Atacama Large Millimetre/sub-millimetre Array
- Spatially resolved HCN J=4--3 and CS J=7--6 emission from the disk around HD 142527
- The Formation of Fragments at Corotation in Isothermal Protoplanetary Disks
Cited by in corpus (8)
- The effects of disk self-gravity and radiative cooling on the formation of gaps and spirals by young planets
- On the planetary interpretation of multiple gaps and rings in protoplanetary disks seen by ALMA
- On the non-axisymmetric fragmentation of rings generated by the Secular Gravitational Instability
- Ring Formation in Protoplanetary Disks Driven by an Eccentric Instability
- The burst mode of accretion in massive star formation with stellar inertia
- Global Spiral Density Wave Modes in Protoplanetary Disks: Morphology of Spiral Arms
- Discs are born eccentric
- Planet-driven density waves in protoplanetary discs: numerical verification of nonlinear evolution theory