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arXiv · 2607.14090

Cold Stream Penetration of Virial Shocks: Fragmentation, Coagulation, and Disruption in the Hot Circumgalactic Medium

Abstract

Cold streams penetrating virial shocks of massive halos along cosmic web filaments are expected to fuel galaxy growth at high redshift, yet the physical processes governing their penetration remain uncertain. We investigate cylindrical cold streams penetrating a hot circumgalactic medium (CGM) using idealized three-dimensional simulations. We systematically vary the stream radius, Mach number, and initial pressure contrast between the stream and the CGM across three density contrasts, while controlling stream properties after pressure equilibrium is re-established. We identify three evolutionary regimes: coagulation, fragmentation, and disruption, plus a borderline regime in which the stream core marginally survives while detached fragments are disrupted. At modest pressure contrast, survival is governed primarily by the competition between velocity shear and radiative cooling. Increasing pressure contrast produces a transient response during pressure restoration, temporarily enhancing or suppressing the cold-gas mass and cold-hot interfacial area before evolution converges to a shear-dominated state. At larger pressure contrasts, the oblique shock steepens into a bow shock, and the final outcome is determined by the ratio of the post-shock cooling time to the virial crossing time. In all survival cases, post-equilibration evolution is well described by turbulent radiative entrainment at the stream-CGM interface: the cold-gas mass flux increases while the mean streamwise momentum flux remains approximately conserved. Applying these results to a galaxy evolution framework, we find that cold streams in high-\ifmσ density peaks at $z>2$ are expected to survive and may fragment into multiphase structures embedded in the hot CGM. At $z\lesssim0.5$, stronger bow shocks and longer post-shock cooling suppress cold-stream penetration.

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Zhiyuan Yao, Nir Mandelker, S. Peng Oh. 2026-07-15. Cold Stream Penetration of Virial Shocks: Fragmentation, Coagulation, and Disruption in the Hot Circumgalactic Medium. https://arxiv.org/abs/2607.14090

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