Cloud Dispersal in Turbulent Flows

ArXiv astro-ph/0610930 (2006)

Authors:

F Heitsch, AD Slyz, JEG Devriendt, A Burkert

Abstract:

Cold clouds embedded in warm media are very common objects in astrophysics. Their disruption timescale depends strongly on the dynamical configuration. We discuss the evolution of an initially homogeneous cold cloud embedded in warm turbulent gas. Within a couple of dynamical timescales, the filling factor of the cold gas within the original cloud radius drops below 50%. Turbulent diffusivities estimated from the time evolution of radial filling factor profiles are not constant with time. Cold and warm gas are bodily transported by turbulence and mixed. This is only mildly indicated by column density maps. The radiation field within the cloud, however, increases by several orders of magnitudes due to the mixing, with possible consequences for cloud chemistry and evolution within a few dynamical timescales.

Magnetized Non-linear Thin Shell Instability: Numerical Studies in 2D

(2006)

Authors:

F Heitsch, AD Slyz, JEG Devriendt, L Hartmann, A Burkert

Cloud Dispersal in Turbulent Flows

(2006)

Authors:

F Heitsch, AD Slyz, JEG Devriendt, A Burkert

Conservative Estimates of the Mass of the Neutrino from Cosmology

(2006)

Authors:

C Zunckel, PG Ferreira

Conservative Estimates of the Mass of the Neutrino from Cosmology

ArXiv astro-ph/0610597 (2006)

Authors:

C Zunckel, PG Ferreira

Abstract:

A range of experimental results point to the existence of a massive neutrino. The recent high precision measurements of the cosmic microwave background and the large scale surveys of galaxies can be used to place an upper bound on this mass. In this paper we perform a thorough analysis of all assumptions that go into obtaining a credible limit on $\sum m_ν$. In particular we explore the impact of extending parameter space beyond the current standard cosmological model, the importance of priors and the uncertainties due to biasing in large scale structure. We find that the mass constraints are independent of the choice of parameterization as well as the inclusion of spatial curvature. The results of including the possibility of dark energy and tensors perturbations are shown to depend critically on the data sets used. The difference between an upper bound of 2.2 eV, assuming generic initial conditions, and an upper bound of 0.63 eV, assuming adiabaticity and a galaxy bias of 1, demonstrate the dependence of such a constraint on the assumptions in the analysis.