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Arkenstone -- II. A model for unresolved cool clouds entrained in galactic winds in cosmological simulations
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Arkenstone is a new scheme that allows multiphase, stellar feedback-driven winds to be included in coarse resolution cosmological simulations. The evolution of galactic winds and their subsequent impact on the circumgalactic medium are altered by exchanges of mass, energy, momentum, and metals between their component phases. These exchanges are governed by complex, small-scale physical processes that cannot be resolved in cosmological simulations. In this second presentation paper, we describe Arkenstone's novel cloud particle approach for modelling unresolvable cool clouds entrained in hot, fast winds. This general framework allows models of the cloud-wind interaction, derived from state-of-the-art high-resolution simulations, to be applied in a large-scale context. In this work, we adopt a cloud evolution model that captures simultaneous cloud mass loss to and gain from the ambient hot phase via turbulent mixing and radiative cooling, respectively. We demonstrate the scheme using non-cosmological idealized simulations of a galaxy with a realistic circumgalactic medium component, using the Arepo code. We show that the ability of a high-specific energy wind component to perform preventative feedback may be limited by heavy loading of cool clouds coupled into it. We demonstrate that the diverging evolution of clouds of initially differing masses leads to a complex velocity field for the cool phase and a cloud mass function that varies both spatially and temporally in a non-trivial manner. These latter two phenomena can manifest in the simulation because of our choice of a Lagrangian discretisation of the cloud population, in contrast to other proposed schemes. This is a Learning the Universe publication.
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Cited by 3 Pith papers
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Woven by the Whirls: The growth and entrainment of cold clouds in turbulent hot winds
Subsonic turbulence in a hot wind enlarges the cloud–wind mixing surface, boosting cold-cloud mass growth up to ~10× when cooling is fast and shortening entrainment time.
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MOGLI: Model for Multiphase Gas using Multifluid hydrodynamics
A two-fluid subgrid model with only two tuned parameters reproduces resolved multiphase gas evolution in turbulent boxes, enabling unresolved cold gas in large-scale astrophysical simulations.
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The Co-Evolution of Stellar Wind-blown Bubbles and Photoionized Gas II: 3D RMHD Simulations and Tests of Semi-Analytic Models
Photoionized gas reduces the cooling surface area of a wind-blown bubble, boosting its momentum impact in 3D RMHD simulations, while a coupled semi-analytic model matches simulated radii and momenta to about 20 to 30 percent.
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