Non-linear violent disc instability with high Toomre's Q in high-redshift clumpy disc galaxies
Abstract
We utilize zoom-in cosmological simulations to study the nature of violent disc instability (VDI) in clumpy galaxies at high redshift, --. Our simulated galaxies are not in the ideal state assumed in Toomre instability, of linear fluctuations in an isolated, uniform, rotating disk. There, instability is characterised by a parameter below unity, and lower when the disk is thick. Instead, the high-redshift discs are highly perturbed. Over long periods they consist of non-linear perturbations, compact massive clumps and extended structures, with new clumps forming in inter-clump regions. This is while the galaxy is subject to frequent external perturbances. We compute the local, two-component parameter for gas and stars, smoothed on a scale to capture clumps of . The regions are confined to collapsed clumps due to the high surface density there, while the inter-clump regions show significantly higher than unity. Tracing the clumps back to their relatively smooth Lagrangian patches, we find that prior to clump formation typically ranges from unity to a few. This is unlike the expectations from standard Toomre instability. We discuss possible mechanisms for high- clump formation, e.g. rapid turbulence decay leading to small clumps that grow by mergers, non-axisymmetric instability, or clump formation induced by non-linear perturbations in the disk. Alternatively, the high- non-linear VDI may be stimulated by the external perturbations such as mergers and counter-rotating streams. The high may represent excessive compressive modes of turbulence, possibly induced by tidal interactions.
Keywords
Cite
@article{arxiv.1510.07695,
title = {Non-linear violent disc instability with high Toomre's Q in high-redshift clumpy disc galaxies},
author = {Shigeki Inoue and Avishai Dekel and Nir Mandelker and Daniel Ceverino and Frederic Bournaud and Joel Primack},
journal= {arXiv preprint arXiv:1510.07695},
year = {2016}
}
Comments
Accepted for publication in MNRAS. 20 pages, 21 figures