Suppression of X-rays from radiative shocks by their thin-shell instability
arXiv:1401.2063 · doi:10.1093/mnras/stt2475
Abstract
We examine X-rays from radiatively cooled shocks, focusing on how their thin-shell instability reduces X-ray emission. For 2D simulations of collision between equal expanding winds, we carry out a parameter study of such instability as a function of the ratio of radiative vs. adiabatic-expansion cooling lengths. In the adiabatic regime, the extended cooling layer suppresses instability, leading to planar shock compression with X-ray luminosity that follows closely the expected (Lx ~ M^2) quadratic scaling with mass-loss rate M . In the strongly radiative limit, the X-ray emission now follows an expected linear scaling with mass loss (Lx ~ M), but the instability deforms the shock compression into extended shear layers with oblique shocks along fingers of cooled, dense material. The spatial dispersion of shock thermalization limits strong X-ray emission to the tips and troughs of the fingers, and so reduces the X-ray emission (here by about a factor 1/50) below what is expected from analytic radiative-shock models without unstable structure. Between these two limits, X-ray emission can switch between a high-state associated with extended shock compression, and a low-state characterized by extensive shear. Further study is needed to clarify the origin of this "shear mixing reduction factor" in X-ray emission, and its dependence on parameters like the shock Mach number.
References in corpus (2)
Cited by in corpus (27)
- X-rays from Magnetically Confined Wind Shocks: Effect of Cooling-Regulated Shock Retreat
- X-ray emission from interacting massive binaries: a review of 15 years of progress
- An `Analytic Dynamical Magnetosphere' formalism for X-ray and optical emission from slowly rotating magnetic massive stars
- Simulating the formation of Carinae's surrounding nebula through unstable triple evolution and stellar merger-induced eruption
- The Multi-Dimensional Structure of Radiative Shocks: Suppressed Thermal X-rays and Relativistic Ion Acceleration
- The Carnegie Supernova Project II. The shock wave revealed through the fog: The strongly interacting Type IIn SN 2013L
- Colliding Stellar Winds Structure and X-ray Emission
- Instabilities in the Envelopes and Winds of Very Massive Stars
- Clump formation through colliding stellar winds in the Galactic Centre
- Shocks in nova outflows. II. Synchrotron radio emission
- 3D simulations of clump formation in stellar wind collisions
- Measuring the shock-heating rate in the winds of O stars using X-ray line spectra
- Internal Shocks from Variable Outflows in Classical Novae
- Supernova explosions interacting with aspherical circumstellar material: implications for light curves, spectral line profiles, and polarization
- The luminous Type IIN supernova SN 2017hcc: Infrared bright, X-ray and radio faint
- Colliding Winds in Low-Mass Binary Star Systems: wind interactions and implications for habitable planets
- Fe xxv line profiles in colliding wind binaries
- A changing wind collision
- The 2.35 year itch of Cygnus OB2#9 III. X-ray and radio emission analysis based on three dimensional hydrodynamical modelling
- New X-ray detections of known Wolf-Rayet stars
- X-ray emission of massive stars and their winds
- Wind Collision and Accretion Simulations of the Massive Binary System HD 166734
- LIFELINE: The program for the simulation of the X-ray line profiles in massive colliding wind binaries
- EWOCS-IV: 1Ms ACIS Chandra observation of the supergiant B[e] star Wd1-9
- Compact stellar systems hosting an intermediate mass black hole: magnetohydrodynamic study of inflow-outflow dynamics
- Investigation of the nature of the wind interaction in HD93205 based on multi-epoch X-ray observations
- Supernovae in colliding-wind binaries: observational signatures in the first year