The effect of photo-ionization on the cooling rates of enriched, astrophysical plasmas
arXiv:0807.3748 · doi:10.1111/j.1365-2966.2008.14191.x
Abstract
Radiative cooling is central to a wide range of astrophysical problems. Despite its importance, cooling rates are generally computed using very restrictive assumptions, such as collisional ionization equilibrium and solar relative abundances. We simultaneously relax both assumptions and investigate the effects of photo-ionization of heavy elements by the meta-galactic UV/X-ray background and of variations in relative abundances on the cooling rates of optically thin gas in ionization equilibrium. We find that photo-ionization by the meta-galactic background radiation reduces the net cooling rates by up to an order of magnitude for gas densities and temperatures typical of the shock-heated intergalactic medium and proto-galaxies. In addition, photo-ionization changes the relative contributions of different elements to the cooling rates. We conclude that photo-ionization by the ionizing background and heavy elements both need to be taken into account in order for the cooling rates to be correct to order of magnitude. Moreover, if the rates need to be known to better than a factor of a few, then departures of the relative abundances from solar need to be taken into account. We propose a method to compute cooling rates on an element-by-element basis by interpolating pre-computed tables that take photo-ionization into account. We provide such tables for a popular model of the evolving UV/X-ray background radiation, computed using the photo-ionization package CLOUDY.
10 pages, 6 figures, Accepted for publication in MNRAS. One figure added and minor textual changes made to first version. Downloadable tables and videos available at http://www.strw.leidenuniv.nl/WSS08/
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- Study of dependence of ram pressure stripping on the orbital parameters of the galaxies
- Predicting interstellar radiation fields from chemical evolution models
- The Cliff: A Metal-Poor Little Red Dot Hosting an Overmassive Black Hole at
- SubDLe: identification of substructures in cosmological simulations with deep learning
- The Three Hundred Project: dissecting the fundamental plane of galaxy clusters up to
- Prospects for detecting the circum- and intergalactic medium in X-ray absorption using the extended intracluster medium as a backlight
- A multi-ion non-equilibrium solver for ionised astrophysical plasmas with arbitrary elemental abundances
- Understanding the large inferred Einstein radii of observed low-mass galaxy clusters
- Linking the Internal Properties of Infant Globular Clusters to their Formation Environments
- Go with the Flow: The Self-Similar and Non-Linear Behaviour of Large-Scale In- and Outflows and the Impact of Accretion Shocks from Galaxies to Galaxy Clusters
- Two-phase formation of galaxies: the coevolution between galaxies and dark matter halos
- Hot accretion onto spiral galaxies: the origin of extended and warped HI discs
- A New Model For Including Galactic Winds in Simulations of Galaxy Formation II: Implementation of PhEW in Cosmological Simulations
- First Light And Reionisation Epoch Simulations (FLARES) III: The properties of massive dusty galaxies at cosmic dawn
- An Interpretable AI Framework to Disentangle Self-Interacting and Cold Dark Matter in Galaxy Clusters: The CKAN Approach
- Tracing the environmental history of observed galaxies via extended fast action minimization method
- Rabacus: A Python Package for Analytic Cosmological Radiative Transfer Calculations
- Baryon-driven decontraction in Milky Way mass haloes
- Halo cluster shapes: Insights from simulated galaxies and ICL with prospects for weak lensing applications
- Cosmological evolution of gas and supermassive black holes in idealized isolated halos
- Predictions for the X-ray circumgalactic medium of edge-on discs and spheroids
- Aligned and misaligned metallicity gradients in young stars and star-forming regions in the EAGLE discs
- Using the EAGLE simulations to elucidate the origin of disc surface brightness profile breaks as a function of mass and environment
- Rapid sinking and efficient mergers of supermassive black holes in compact high-redshift galaxies
- SF-R You Sure? The Conflicting Role of Star Formation Rates in Constraining the Evolution of Milky Way Analogues in Cosmological Simulations
- The Cosmic Rush Hour: Rapid Formation of Bright, Massive, Disky, Star-Forming Galaxies as Signatures of Early-Universe Physics
- The origin of the intra-cluster light in The Three Hundred simulations
- The Halo21 Absorption Modeling Challenge: Lessons From "Observing" Synthetic Circumgalactic Absorption Spectra
- The interplay between AGN feedback and precipitation of the intracluster medium in simulations of galaxy groups and clusters
- Shape, alignment, and mass distribution of baryonic and dark-matter halos in one EAGLE simulation
- Radio polarization from runaway star bowshocks-I. The general case
- Exploring the halo occupation distribution for moderate X-ray luminosity active galactic nuclei in the EAGLE cosmological simulation
- Galaxy mergers can initiate quenching by unlocking an AGN-driven transformation of the baryon cycle
- Modeling Cosmological Evolution of Jetted Seyfert Galaxies for z<10
- Modeling supernova feedback in galaxy formation simulations with energy-conserving momentum injection