Shock Dynamics in Stellar Outbursts: I. Shock formation
arXiv:1612.08997 · doi:10.3847/1538-4357/aa6d5c
Abstract
Wave-driven outflows and non-disruptive explosions have been implicated in pre-supernova outbursts, supernova impostors, LBV eruptions, and some narrow-line and superluminous supernovae. To model these events, we investigate the dynamics of stars set in motion by strong acoustic pulses and wave trains, focusing here on nonlinear wave propagation, shock formation, and an early phase of the development of a weak shock. We identify the shock formation radius, showing that a heuristic estimate based on crossing characteristics matches an exact expansion around the wave front and verifying both with numerical experiments. Our general analytical condition for shock formation applies to one-dimensional motions within any static environment, including both eruptions and implosions, and can easily be extended to non-stationary flows. We also consider the early phase of shock energy dissipation. We find that waves of super-Eddington acoustic luminosity always create shocks, rather than damping by radiative diffusion. Therefore, shock formation is integral to super-Eddington outbursts.
9 pages, 6 figures, submitted to Astrophysical Journal, comments welcome
References in corpus (8)
- Pulsational pair instability as an explanation for the most luminous supernovae
- A giant outburst two years before the core-collapse of a massive star
- SN 2006jc: A Wolf-Rayet Star Exploding in a Dense He-Rich Circumstellar Medium
- A Blast Wave from the 1843 Eruption of Eta Carinae
- SN 2015bh: NGC 2770's 4th supernova or a luminous blue variable on its way to a Wolf-Rayet star?
- Wave-driven stellar expansion and binary interaction in pre-supernova outbursts
- Oblique Shock Breakout in Supernovae and Gamma-Ray Bursts: II. Numerical Solutions For Non-Relativistic Pattern Speeds
- Deflagration to detonation transition by amplification of acoustic waves in type Ia supernovae
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- Giant planet engulfment by evolved giant stars: light curves, asteroseismology, and survivability
- Exceptionally fast ejecta seen in light echoes of Eta Carinae's Great Eruption
- Partial Stellar Explosions -- Ejected Mass and Minimal Energy
- Hydrodynamic Simulations of Pre-Supernova Outbursts in Red Supergiants: Asphericity and Mass Loss
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- KSP-SN-2016kf: a long-rising H-rich Type II Supernova with unusually high Ni mass discovered in the KMTNet Supernova Program
- Weak Shock Propagation with Accretion. II. Stability of Self-similar Solutions to Radial Perturbations
- Wave-Driven Shocks in Stellar Outbursts: Dynamics, Envelope Heating, and Nascent Blastwaves
- The Wolf-Rayet Stellar Response To The Iron Opacity Bump: Envelope Inflation, Winds, and Microturbulence
- Stellar Shocks From Dark Matter Asteroid Impacts
- The Betelgeuse Project II: Asteroseismology
- The formation and dissipation of current sheets and shocks due to compressive waves in a stratified atmosphere containing a magnetic null
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- On Linear and Nonlinear Acoustics in Stratified, Variable-Area Ducts and Atmospheres, and Lighthill's Proposition