Interactions of a shock with a molecular cloud at various stages of its evolution due to thermal instability and gravity
arXiv:2012.04546 · doi:10.1093/mnras/staa3889
Abstract
Using the adaptive mesh refinement code MG, we perform hydrodynamic simulations of the interaction of a shock with a molecular cloud evolving due to thermal instability and gravity. To explore the relative importance of these processes, three case studies are presented. The first follows the formation of a molecular cloud out of an initially quiescent atomic medium due to the effects of thermal instability and gravity. The second case introduces a shock whilst the cloud is still in the warm atomic phase, and the third scenario introduces a shock once the molecular cloud has formed. The shocks accelerate the global collapse of the clouds with both experiencing local gravitational collapse prior to this. When the cloud is still atomic, the evolution is shock dominated and structures form due to dynamical instabilities within a radiatively cooled shell. While the transmitted shock can potentially trigger the thermal instability, this is prevented as material is shocked multiple times on the order of a cloud crushing time-scale. When the cloud is molecular, the post-shock flow is directed via the pre-existing structure through low-density regions in the inter-clump medium. The clumps are accelerated and deformed as the flow induces clump-clump collisions and mergers that collapse under gravity. For a limited period, both shocked cases show a mixture of Kolmogorov and Burgers turbulence-like velocity and logarithmic density power spectra, and strongly varying density spectra. The clouds presented in this work provide realistic conditions that will be used in future feedback studies.
References in corpus (24)
- Cold Dark Clouds: The Initial Conditions for Star Formation
- The Statistics of Supersonic Isothermal Turbulence
- 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
- What is Driving the HI Velocity Dispersion?
- A new Jeans resolution criterion for (M)HD simulations of self-gravitating gas: Application to magnetic field amplification by gravity-driven turbulence
- Density Fluctuations in MHD Turbulence: Spectra, Intermittency and Topology
- The JCMT BISTRO Survey: The magnetic field strength in the Orion A filament
- The ISM in spiral galaxies: can cooling in spiral shocks produce molecular clouds?
- Simulations of spiral galaxies with an active potential: molecular cloud formation and gas dynamics
- The turbulent destruction of clouds - I. A k-epsilon treatment of turbulence in 2D models of adiabatic shock-cloud interactions
- Core and filament formation in magnetized, self-gravitating isothermal layers
- Formation of HI Clouds in Shock-compressed Interstellar Medium: Physical Origin of Angular Correlation Between Filamentary Structure and Magnetic Field
- Galactic Spiral Shocks with Thermal Instability
- Shock-triggered formation of magnetically-dominated clouds
- Forward and inverse cascades in decaying two-dimensional electron magnetohydrodynamic turbulence
- Turbulence in simulated HII regions
- Thermal instability and multi-phase interstellar medium in the first galaxies
- Hydrodynamic simulations of mechanical stellar feedback in a molecular cloud formed by thermal instability
- GMC Collisions as Triggers of Star Formation. VI. Collision-Induced Turbulence
- Thermal instability revisited
- The interaction of a magnetohydrodynamical shock with a filament
- The isothermal evolution of a shock-filament interaction
- Striations, integrals, hourglasses and collapse -- thermal instability driven magnetic simulations of molecular clouds
Cited by in corpus (4)
- How D-type HII region expansion depends on numerical resolution
- Shocking interactions of supernova remnants with atomic and molecular clouds -- the interplay between shocks, thermal instability and gravity in the large cloud regime
- Momentum and energy injection by a wind-blown bubble into an inhomogeneous interstellar medium
- An origin of narrow extended structure in the interstellar medium: an interstellar contrail created by a fast-moving massive object