Non-ideal MHD turbulent decay in molecular clouds
arXiv:0909.4226 · doi:10.1088/0004-637X/701/2/1258
Abstract
It is well known that non-ideal magnetohydrodynamic effects are important in the dynamics of molecular clouds: both ambipolar diffusion and possibly the Hall effect have been identified as significant. We present the results of a suite of simulations with a resolution of 512-cubed of turbulent decay in molecular clouds incorporating a simplified form of both ambipolar diffusion and the Hall effect simultaneously. The initial velocity field in the turbulence is varied from being super-Alfvénic and hypersonic, through to trans-Alfvénic but still supersonic. We find that ambipolar diffusion increases the rate of decay of the turbulence increasing the decay from to . The Hall effect has virtually no impact in this regard. The power spectra of density, velocity and the magnetic field are all affected by the non-ideal terms, being steepened significantly when compared with ideal MHD turbulence with exponents. The density power spectra components change from about 1.4 to about 2.1 for the ideal and non-ideal simulations respectively, and power spectra of the other variables all show similar modifications when non-ideal effects are considered. Again, the dominant source of these changes is ambipolar diffusion rather than the Hall effect. There is also a decoupling between the velocity field and the magnetic field at short length scales. The Hall effect leads to enhanced magnetic reconnection, and hence less power, at short length scales. The dependence of the velocity dispersion on the characteristic length scale is studied and found not to be power-law in nature.
16 pages, 17 figures
References in corpus (9)
- Re-examining Larson's Scaling Relationships in Galactic Molecular Clouds
- The Statistics of Supersonic Isothermal Turbulence
- Simulating the formation of molecular clouds. II. Rapid formation from turbulent initial conditions
- Numerical simulations of compressively driven interstellar turbulence: I. Isothermal gas
- Density Probability Distribution Functions in Supersonic Hydrodynamic and MHD Turbulence
- Dissipation and Heating in Supersonic Hydrodynamic and MHD Turbulence
- Sub-Alfvenic Non-Ideal MHD Turbulence Simulations with Ambipolar Diffusion: I. Turbulence Statistics
- A three-dimensional numerical method for modelling weakly ionized plasmas
- Three-dimensional Simulation of Magnetized Cloud Fragmentation Induced by Nonlinear Flows and Ambipolar Diffusion
Cited by in corpus (10)
- Turbulent molecular clouds
- On the origin of non self-gravitating filaments in the ISM
- Effects of Magnetic Fields on Photoionised Pillars and Globules
- Driven Multifluid MHD Molecular Cloud Turbulence
- The interplay between feedback, accretion, transport and winds in setting gas-phase metal distribution in galaxies
- The Kelvin-Helmholtz instability in weakly ionised plasmas: Ambipolar dominated and Hall dominated flows
- Sub-Alfvenic Non-Ideal MHD Turbulence Simulations with Ambipolar Diffusion: III. Implications for Observations and Turbulent Enhancement
- The Kelvin-Helmholtz instability in weakly ionised plasmas II: multifluid effects in molecular clouds
- Multifluid magnetohydrodynamic turbulent decay
- Length-scales and Dynamics of Carina's Western Wall