The Supersonic Project: The Early Evolutionary Path of SIGOs
arXiv:2208.05987 · doi:10.3847/1538-4357/acac8d
Abstract
Supersonically Induced Gas Objects (SIGOs) are a class of early Universe objects that have gained attention as a potential formation route for globular clusters. SIGOs have only recently begun to be studied in the context of molecular hydrogen cooling, which is key to characterizing their structure and evolution. Studying the population-level properties of SIGOs with molecular cooling is important for understanding their potential for collapse and star formation, and central for addressing whether SIGOs can survive to the present epoch. Here, we investigate the evolution of SIGOs before they form stars, using a combination of numerical and analytical analysis. For example, we study various timescales important to the evolution of SIGOs at a population level in the presence of molecular cooling. Revising the previous formulation for the critical density of collapse for SIGOs allows us to show that their prolateness tends to act as an inhibiting factor to collapse. We find that simulated SIGOs are limited by artificial two-body relaxation effects that tend to disperse them, an effect of their limited resolution. We expect that SIGOs in nature will be longer-lived compared to our simulations. Further, the fall-back timescale on which SIGOs fall into nearby dark matter halos, potentially producing a globular-cluster-like system, is frequently longer than their cooling timescale and the collapse timescale on which they shrink through gravity. Therefore, some SIGOs have time to cool and collapse outside of halos despite initially failing to exceed the critical density, even without considering metal line cooling. From this analysis we conclude that SIGOs should form stars outside of halos in non-negligible stream velocity patches in the Universe.
18 pages, 11 figures
References in corpus (19)
- Power-law distributions in empirical data
- The EAGLE project: Simulating the evolution and assembly of galaxies and their environments
- Theory of Star Formation
- Introducing the Illustris Project: Simulating the coevolution of dark and visible matter in the Universe
- Properties of galaxies reproduced by a hydrodynamic simulation
- Cold Dark Clouds: The Initial Conditions for Star Formation
- Slow Star Formation in Dense Gas: Evidence and Implications
- Protostar Formation in the Early Universe
- Grackle: a Chemistry and Cooling Library for Astrophysics
- Supersonic Gas Streams Enhance the Formation of Massive Black Holes in the Early Universe
- Moving mesh simulations of star forming cores in magneto-gravo-turbulence
- Self-Similar Solutions of Triaxial Dark Matter Halos
- Globular Clusters and Dark Satellite Galaxies through the Stream Velocity
- Great Balls of FIRE I: The formation of star clusters across cosmic time in a Milky Way-mass galaxy
- The Supersonic Project: Shining Light on SIGOs - a New Formation Channel for Globular Clusters
- The Effects of Magnetic Fields and Outflow Feedback on the Shape and Evolution of the Density PDF in Turbulent Star-Forming Clouds
- Globular Clusters and Streaming Velocities: Testing the new formation channel in high-resolution cosmological simulations
- cooling and gravitational collapse of supersonically induced gas objects
- Diagnosing Turbulence in the Neutral and Molecular Interstellar Medium of Galaxies