Momentum and energy injection by a supernova remnant into an inhomogeneous medium
arXiv:1907.03519 · doi:10.1093/mnras/stz1885
Abstract
We investigate the effect of mass-loading from embedded clouds on the evolution of supernova remnants and on the energy and momentum that they inject into an inhomogeneous interstellar medium. We use 1D hydrodynamical calculations and assume that the clouds are numerous enough that they can be treated in the continuous limit. The destruction of embedded clouds adds mass into the remnant, increasing its density and pressure, and decreasing its temperature. The remnant cools more quickly, is less able to do PdV work on the swept-up gas, and ultimately attains a lower final momentum (by up to a factor of two or more). We thus find that the injection of momentum is more sensitive to an inhomogeneous environment than previous work has suggested, and we provide fits to our results for the situation where the cloud mass is not limited. The behaviour of the remnant is more complex in situations where the cloud mass is finite and locally runs out. In the case of multiple supernovae in a clustered environment, later supernova explosions may encounter higher densities than previous explosions due to the prior liberation of mass from engulfed clouds. If the cloud mass is finite, later explosions may be able to create a sustained hot phase when earlier explosions have not been able to.
21 pages, 16 figures, accepted for publication in MNRAS
References in corpus (18)
- Star Formation and Feedback in Smoothed Particle Hydrodynamic Simulations--I. Isolated Galaxies
- Cosmological Simulations of Intergalactic Medium Enrichment from Galactic Outflows
- Forming Disk Galaxies in Lambda CDM Simulations
- Momentum Injection by Supernovae in the Interstellar Medium
- Escape fraction of ionizing photons during reionization: effects due to supernova feedback and runaway OB stars
- Feedback and metal enrichment in cosmological SPH simulations - II. A multiphase model with supernova energy feedback
- A Superbubble Feedback Model for Galaxy Simulations
- Vertical structure of a supernova-driven turbulent magnetized ISM
- Modelling the supernova-driven ISM in different environments
- Mutual influence of supernovae and molecular clouds
- An Exact Integration Scheme for Radiative Cooling in Hydrodynamical Simulations
- Simulations of magnetized multiphase galactic disk regulated by supernovae explosions
- The enrichment history of cosmic metals
- On the dynamics and survival of fractal clouds in galactic winds
- Numerical Simulations of Supernova Remnant Evolution in a Cloudy Interstellar Medium
- Non-equilibrium ionization in mixed-morphology supernova remnants
- Numerical simulations of shocks encountering clumpy regions
- How radiation affects superbubbles: Through momentum injection in early phase and photo-heating thereafter
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