Dynamics of a Supernova Envelope in a Cloudy Interstellar Medium
V.V. Korolev, E.O. Vasiliev, I.G. Kovalenko, Yu.A. Shchekinov

TL;DR
This study models how supernova remnants evolve in a cloudy interstellar medium, revealing effects on their dynamics, energy loss, metal distribution, and observable properties, especially with varying cloud volume filling factors.
Contribution
It introduces a 3D axially symmetrical model that accounts for metal mixing and radiative losses, showing how cloudiness influences supernova remnant evolution and observable features.
Findings
Faster transition to radiative phase with higher cloud filling factors.
Formation of a kinetic energy layer behind the shock front at high cloud filling factors.
Metals remain centrally concentrated, preserving initial metallicity.
Abstract
The evolution of a supernova remnant in a cloudy medium as a function of the volume filling factor of the clouds is studied in a three-dimensional axially symmetrical model. The model includes the mixing of heavy elements (metals) ejected by the supernova and their contribution to radiative losses. The interaction of the supernova envelope with the cloudy phase of the interstellar medium leads to nonsimultaneous, and on average earlier, onsets of the radiative phase in different parts of the supernova envelope. Growth in the volume filling factor leads to a decrease in the time for the transition of the envelope to the radiative phase and a decrease in the envelope's mean radius, due to the increased energy losses by the envelope in the cloudy medium. When the development of hydrodynamical instabilities in the supernova envelope is efficient, the thermal energy falls as $E_t\sim…
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