Damped Lyman Alpha Systems vs. Cold + Hot Dark Matter
Abstract
Damped Ly systems provide possibly the most significant evidence for early structure formation, and thus a stringent constraint on the Cold + Hot Dark Matter (CHDM) cosmology. Using the numbers of halos in N-body simulations to normalize Press-Schechter (PS) estimates of the number densities of protogalaxies as a function of redshift, we find that CHDM with is compatible with the damped Ly data only at , but that it is probably incompatible with data at . The predictions of CHDM are quite sensitive to the neutrino fraction. We find that is compatible with the data. With one massive neutrino species, this corresponds to lowering the neutrino mass from 7.0 to 4.7 eV, for and K. By analysing our numerical simulations with different resolutions and box sizes as well as those of Ma \& Bertchinger (1994), we show that for the CHDM models with =0.2--0.3 the PS approximation should be used with Gaussian filter with if one tries to recover the total mass of a collapsed halo and to include nonlinear effects, due to waves both longer and shorter than those within the simulation box.
Cite
@article{arxiv.astro-ph/9410022,
title = {Damped Lyman Alpha Systems vs. Cold + Hot Dark Matter},
author = {Anatoly Klypin and Stefano Borgani and Jon Holtzman and Joel Primack},
journal= {arXiv preprint arXiv:astro-ph/9410022},
year = {2009}
}
Comments
submitted to ApJ, 31 pages including one table and 6 figures, uuencoded compressed postscript, SCIPP 94/09