Model Simulations of a Shock-Cloud Interaction in the Cygnus Loop
Abstract
We present optical observations and 2D hydrodynamic modeling of an isolated shocked ISM cloud. H images taken in 1992.6 and 2003.7 of a small optical emission cloud along the southwestern limb of the Cygnus Loop were used to measure positional displacements of yr for surrounding Balmer dominated emission filaments and yr for internal cloud emission features. These measurements imply transverse velocities of 250 km s and 80 -- 140 km s for ambient ISM and internal cloud shocks respectively. The complex shock structure visible within the cloud indicates that the cloud's internal density distribution is two phased: a smoothly varying background density which is populated by higher density clumps. We present model results for a shock interacting with a non-uniform ISM cloud. We find that this cloud can be well modeled by a smoothly varying power law core surrounded by a low density envelope with a Lorentzian profile. The lack of sharp density gradients in such a model inhibits the growth of Kelvin-Helmholtz instabilities, consistent with the cloud's appearance. Our model results also suggest that cloud clumps have densities 10 times the ambient ISM density and account for 30% of the total cloud volume. Moreover, the observed spacing of internal cloud shocks and model simulations indicate that the distance between clumps is 4 clump radii.
Cite
@article{arxiv.astro-ph/0507330,
title = {Model Simulations of a Shock-Cloud Interaction in the Cygnus Loop},
author = {D. J. Patnaude and R. A. Fesen},
journal= {arXiv preprint arXiv:astro-ph/0507330},
year = {2009}
}
Comments
To be published in ApJ