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The stable "Unstable Natural Media" due to the presence of turbulence
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abstract
The term "unstable neutral media" (UNM) has traditionally been used to describe the transient phase formed between the warm and cold neutral hydrogen (HI) phases and has not been the focus of HI studies. However, recent observations suggest that the UNM phase not only has a significantly longer-than-expected lifetime but also occupies at least 20\% to 40\% of both the volume and mass fraction of HI. In this paper, we argue that the existence and dominance of the UNM can be explained by the presence of strong turbulence using an energy balance argument. The mass fraction of UNM is directly proportional to the turbulent velocity dispersion $\sigma_v$: mass fraction of UNM $\propto \sigma_v^{\frac{2n}{1+n}}$, where $n$ is the absolute value of the adiabatic index in the unstable phase. We discuss the implications of long-lived unstable thermal phases on ISM physics, including cold dense filament formation, cosmic ray acceleration, and measurement of galactic foreground statistics.
Forward citations
Cited by 3 Pith papers
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Galactic Dust Polarization in Turbulent Multiphase ISM: On the Origin of the $EE/BB$ Asymmetry
Dust polarization from the unstable neutral medium best matches Planck's EE/BB asymmetry, suggesting it dominates the high-latitude polarized dust foreground.
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Cosmic-Ray Feedback from Supernovae in a Parker-Unstable Medium
Injecting 10% of supernova energy as cosmic rays in a Parker-unstable galactic disk drives a longer-lived outflow and lowers the cosmic-ray calorimetric fraction when the magnetic field is well resolved.
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Evolution of Supernova Remnants in a Cloudy Multiphase Interstellar Medium
A supernova remnant in a cloudy interstellar medium expands at the same rate as in a uniform medium but loses much more energy to cooling at cloud interfaces, reducing its hot gas mass and momentum.
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