The driving mode of shock-driven turbulence
arXiv:2205.14417 · doi:10.1093/mnras/stac1480
Abstract
Turbulence in the interstellar medium (ISM) is crucial in the process of star formation. Shocks produced by supernova explosions, jets, radiation from massive stars, or galactic spiral-arm dynamics are amongst the most common drivers of turbulence in the ISM. However, it is not fully understood how shocks drive turbulence, in particular whether shock driving is a more solenoidal(rotational, divergence-free) or a more compressive (potential, curl-free) mode of driving turbulence. The mode of turbulence driving has profound consequences for star formation, with compressive driving producing three times larger density dispersion, and an order of magnitude higher star formation rate than solenoidal driving. Here, we use hydrodynamical simulations of a shock inducing turbulent motions in a structured, multi-phase medium. This is done in the context of a laser-induced shock, propagating into a foam material, in preparation for an experiment to be performed at the National Ignition Facility (NIF). Specifically, we analyse the density and velocity distributions in the shocked turbulent medium, and measure the turbulence driving parameter with the density dispersion , the turbulent Mach number , and the polytropic exponent . Purely solenoidal and purely compressive driving correspond to and , respectively. Using simulations in which a shock is driven into a multi-phase medium with structures of different sizes and , we find for all cases, showing that shock-driven turbulence is consistent with strongly compressive driving.
18 pages, 15 figures
References in corpus (24)
- Theory of Star Formation
- The Statistics of Supersonic Isothermal Turbulence
- Analytical theory for the initial mass function: CO clumps and prestellar cores
- The Density Probability Distribution in Compressible Isothermal Turbulence: Solenoidal versus Compressive Forcing
- On the Star Formation Efficiency of Turbulent Magnetized Clouds
- What determines the density structure of molecular clouds ? A case study of Orion B with Herschel
- On the Density Distribution in Star-forming Interstellar Clouds
- The link between turbulence, magnetic fields, filaments, and star formation in the Central Molecular Zone cloud G0.253+0.016
- A robust numerical scheme for highly compressible magnetohydrodynamics: Nonlinear stability, implementation and tests
- Unfolding the Laws of Star Formation: The Density Distribution of Molecular Clouds
- Comparing Numerical Methods for Isothermal Magnetized Supersonic Turbulence
- The density structure and star formation rate of non-isothermal polytropic turbulence
- Is the Scaling of Supersonic Turbulence Universal?
- Intermittency and Universality in Fully-Developed Inviscid and Weakly-Compressible Turbulent Flows
- The shapes of column density PDFs - The importance of the last closed contour
- Magnetic Fields in the Formation of the First Stars. I. Theory vs. Simulation
- Evolution of the density PDF in star forming clouds: the role of gravity
- Vorticity production through rotation, shear and baroclinicity
- Thermal and turbulent properties of the Warm Neutral Medium in the solar neighborhood
- Shock-multicloud interactions in galactic outflows -- I. Cloud layers with log-normal density distributions
- The density structure of supersonic self-gravitating turbulence
- Relationship between turbulence energy and density variance in the Solar neighbourhood molecular clouds
- An Observational Method to Measure the Relative Fractions of Solenoidal and Compressible Modes in Interstellar Clouds
- First extragalactic measurement of the turbulence driving parameter: ALMA observations of the star-forming region N159E in the Large Magellanic Cloud
Cited by in corpus (7)
- Turbulence Generation by Shock Interaction with a Highly Non-Uniform Medium
- Lagrangian statistics of a shock-driven turbulent dynamo in decaying turbulence
- Playing with FIRE: A Galactic Feedback-Halting Experiment Challenges Star Formation Rate Theories
- Wide-binary eccentricity distribution in young star clusters: dependence on the binary separation and mass
- Experimental and Numerical Studies of the Collapse of Dense Clouds Induced by Herbig-Haro Stellar Jets
- From 2D to 3D: Recovering Turbulent Density Dispersions from Noisy Data
- Star Formation