Analytical Framework for Expanding Bubbles in a Hot Circumgalactic Medium
Jiang-Tao Li

TL;DR
This paper presents an analytical model for the evolution of feedback-driven bubbles in hot circumgalactic media, accounting for pressure, sound speed, and cooling effects, with implications for observable signatures.
Contribution
It introduces a comprehensive, pressure-modified analytical framework for bubble evolution in hot halos, extending classical models to include realistic CGM conditions and feedback scenarios.
Findings
Bubble evolution is often limited by pressure confinement and transonic transition.
The model predicts bubble sizes, lifetimes, and X-ray luminosities consistent with observations.
Extensions include continuous feedback and multiphase interactions affecting observables.
Abstract
We develop an analytic framework for the evolution of feedback-driven bubbles expanding into a hot, volume-filling circumgalactic medium (CGM), where the ambient pressure and sound speed are non-negligible and radiative cooling is often inefficient. The evolution is organized into four stages -- free expansion, Sedov--Taylor expansion, pressure-modified/transonic transition, and post-transonic relaxation -- and we derive self-consistent scalings for the characteristic radii and timescales that delimit these stages. A central result is that, in hot halos, the end of the strong-shock evolution is frequently set by pressure confinement and transonicity rather than by the onset of catastrophic cooling, implying only a modest late-time overshoot beyond the pressure-balance/transonic point. We connect the dynamics to observable outcomes by estimating bubble sizes and lifetimes,…
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Taxonomy
TopicsAstrophysics and Cosmic Phenomena · Galaxies: Formation, Evolution, Phenomena · Astrophysical Phenomena and Observations
