The signature of large scale turbulence driving on the structure of the interstellar medium
arXiv:2206.00451 · doi:10.1093/mnras/stac1543
Abstract
The mechanisms that maintain turbulence in the interstellar medium (ISM) are still not identified. This work investigates how we can distinguish between two fundamental driving mechanisms: the accumulated effect of stellar feedback versus the energy injection from Galactic scales. We perform a series of numerical simulations describing a stratified star forming ISM subject to self-consistent stellar feedback. Large scale external turbulent driving of various intensities is added to mimic galactic driving mechanisms. We analyse the resulting column density maps with a technique called Multi-scale non-Gaussian segmentation that separates the coherent structures and the Gaussian background. This effectively discriminates between the various simulations and is a promising method to understand the ISM structure. In particular the power spectrum of the coherent structures flattens above 60 pc when turbulence is driven only by stellar feedback. When large-scale driving is applied, the turn-over shifts to larger scales. A systematic comparison with the Large Magellanic Cloud (LMC) is then performed. Only 1 out of 25 regions has a coherent power spectrum which is consistent with the feedback-only simulation. A detailed study of the turn-over scale leads us to conclude that regular stellar feedback is not enough to explain the observed ISM structure on scales larger than 60 pc. Extreme feedback in the form of supergiant shells likely plays an important role but cannot explain all the regions of the LMC. If we assume ISM structure is generated by turbulence, another large scale driving mechanism is needed to explain the entirety of the observations.
15 pages, 11 figures, to be published in MNRAS
References in corpus (28)
- Theory of Star Formation
- A distance to the Large Magellanic Cloud that is precise to one per cent
- The Statistics of Supersonic Isothermal Turbulence
- The Density Probability Distribution in Compressible Isothermal Turbulence: Solenoidal versus Compressive Forcing
- A High Order Godunov Scheme with Constrained Transport and Adaptive Mesh Refinement for Astrophysical MHD
- Modeling Collapse and Accretion in Turbulent Gas Clouds: Implementation and Comparison of Sink Particles in AMR and SPH
- On the Star Formation Efficiency of Turbulent Magnetized Clouds
- Turbulent Structure of a Stratified Supernova-Driven Interstellar Medium
- The Origin of the Magellanic Stream and Its Leading Arm
- Numerical simulations of compressively driven interstellar turbulence: I. Isothermal gas
- Dust and Gas in the Magellanic Clouds from the HERITAGE Herschel Key Project. I. Dust Properties and Insights into the Origin of the Submm Excess Emission
- Modelling the supernova-driven ISM in different environments
- Towards a more realistic sink particle algorithm for the RAMSES code
- Mutual influence of supernovae and molecular clouds
- A localised subgrid scale model for fluid dynamical simulations in astrophysics I: Theory and numerical tests
- Simulations of magnetized multiphase galactic disk regulated by supernovae explosions
- Detection of the Milky Way reflex motion due to the Large Magellanic Cloud infall
- Statistical properties of dust far-infrared emission
- Feedback in Clouds II: UV Photoionisation and the first supernova in a massive cloud
- Instabilities of Spiral Shocks -- II. A quasi-steady State in the multi-phase inhomogeneous ISM
- Star formation laws and thresholds from ISM structure and turbulence
- The Magellanic Stream at 20 kpc: A New Orbital History for the Magellanic Clouds
- Large-scale turbulent driving regulates star formation in high-redshift gas-rich galaxies
- Mapping Spatial Variations of HI Turbulent Properties in the Small and Large Magellanic Cloud
- Spatial Power Spectra of Dust across the Local Group: No Constraint on Disc Scale Height
- Role of Thermal and Non-thermal Processes in the ISM of Magellanic Clouds
- Bottling the Champagne: Dynamics and Radiation Trapping of Wind-Driven Bubbles around Massive Stars
- Regulation of star formation by large scale gravito-turbulence