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Cloud Atlas: Navigating the Multiphase Landscape of Tempestuous Galactic Winds

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arxiv 2305.14424 v2 pith:RGY4WFVS submitted 2023-05-23 astro-ph.GA

classification astro-ph.GA
keywords cloudcloudsscalewindsevolutiongalacticgalaxyinterstellar
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Galaxies comprise intricate networks of interdependent processes which together govern their evolution. Central among these are the multiplicity of feedback channels, which remain incompletely understood. One outstanding problem is the understanding and modeling of the multiphase nature of galactic winds, which play a crucial role in galaxy formation and evolution. We present the results of three dimensional magnetohydrodynamical tall box interstellar medium patch simulations with clustered supernova driven outflows. Fragmentation of the interstellar medium during superbubble breakout seeds the resulting hot outflow with a population of cool clouds. We focus on analyzing and modeling the origin and properties of these clouds. Their presence induces large scale turbulence, which in turn leads to complex cloud morphologies. Cloud sizes are well described by a power law distribution and mass growth rates can be modelled using turbulent radiative mixing layer theory. Turbulence provides significant pressure support in the clouds, while magnetic fields only play a minor role. We conclude that many of the physical insights and analytic scalings derived from idealized small scale simulations translate well to larger scale, more realistic turbulent magnetized winds, thus paving a path towards their necessary yet challenging inclusion in global-scale galaxy models.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. OpenAlex reports about 5 citations worldwide. Full citation record

  1. $\textit{Eppur Si Muove}$: Self-Sustained Streaming Motions in Multi-Phase MHD

    astro-ph.GA 2025-06 conditional novelty 7.0 of 10

    In MHD, radiatively cooling gas forms self-sustained, field-aligned streaming flows, with adjacent flux tubes counter-streaming, driven by anisotropic magnetic pressure support.

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