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Inferring Dense Confined Circumstellar Medium around Supernova Progenitors via Long-term Hydrodynamical Evolution

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abstract

Circumstellar interaction of supernova (SN) ejecta is an essential process in its evolution and observations of SNe have found the signature of circumstellar interaction both in the early and late evolutionary phase of SNe. In this Letter, we show that if the SN forward shock plunges into tenuous stellar wind from dense circumstellar medium (CSM) in the vicinity of the progenitor (i.e., confined CSM), the subsequent time evolutions of the SN-CSM interaction system deviates from the prediction of self-similar solution. In this case, after all of the confined CSM is swept up by the SN forward shock (roughly $10$ days after the explosion), the propagation of the shocked shell will be driven by the freely expanding ram pressure of the confined CSM component, instead of the SN ejecta. Meanwhile, the forward shock decelerates faster than the prediction of thin-shell approximation once the confined CSM component reaches homologous expansion. This lasts until the reverse shock in the confined CSM component reaches the head of the SN ejecta, leading to the restoration of the system into the evolutionary model without confined CSM, where the SN ejecta drives the expansion of the system. We also show that this peculiar evolution will be reflected in observational signatures originating from SN-CSM interaction, taking rapid decline and rebrightening of radio emission as examples. Our results shed light on the importance of taking into account the effect of initial SN-CSM interaction even when we focus on observational properties of SNe a few years after the explosion.

fields

astro-ph.SR 1

years

2025 1

verdicts

CONDITIONAL 1

representative citing papers

Red Supergiant Mass Loss and Mass-Loss Rates

astro-ph.SR · 2025-07-21 · conditional · novelty 3.0

A synthesis review concluding that red supergiant mass loss is gravity-driven, metallicity-independent in rate, and bimodal, with low-mass stars keeping their mantles to core collapse and massive stars shedding them to become yellow hypergiants.

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  • Red Supergiant Mass Loss and Mass-Loss Rates astro-ph.SR · 2025-07-21 · conditional · none · ref 128 · internal anchor

    A synthesis review concluding that red supergiant mass loss is gravity-driven, metallicity-independent in rate, and bimodal, with low-mass stars keeping their mantles to core collapse and massive stars shedding them to become yellow hypergiants.