Cosmic Reionization On Computers: Numerical and Physical Convergence
arXiv:1601.05802 · doi:10.3847/0004-637X/821/1/50
Abstract
In this paper I show that simulations of reionization performed under the Cosmic Reionization On Computers (CROC) project do converge in space and mass, albeit rather slowly. A fully converged solution (for a given star formation and feedback model) can be determined at a level of precision of about 20%, but such a solution is useless in practice, since achieving it in production-grade simulations would require a large set of runs at various mass and spatial resolutions, and computational resources for such an undertaking are not yet readily available. In order to make progress in the interim, I introduce a weak convergence correction factor in the star formation recipe, which allows one to approximate the fully converged solution with finite resolution simulations. The accuracy of weakly converged simulations approaches a comparable, ~20% level of precision for star formation histories of individual galactic halos and other galactic properties that are directly related to star formation rates, like stellar masses and metallicities. Yet other properties of model galaxies, for example, their HI masses, are recovered in the weakly converged runs only within a factor of two.
Replaced with the accepted version
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- Warm Dark Matter and Cosmic Reionization
- The importance of galaxy formation histories in models of reionization
- Constraining the Tail-End of Reionization Using Lyman- Transmission Spikes
- Effects of Photoionization and Photoheating on Lyman-alpha Forest Properties from Cholla Cosmological Simulations
- The Role of Quasar Radiative Feedback on Galaxy Formation during Cosmic Reionization
- Modeling Dust Production, Growth, and Destruction in Reionization-Era Galaxies with the CROC Simulations: Methods and Parameter Exploration
- The Effect of Warm Dark Matter on Early Star Formation Histories of Massive Galaxies: Predictions from the CROC Simulations
- Cosmic Reionization On Computers: Baryonic Effects on Halo Concentrations During the Epoch of Reionization
- POLAR-II: modeling star formation history of galaxies on the 21-cm signal from Epoch of Reionization