The EAGLE project: simulating the evolution and assembly of galaxies and their environments

Проект EAGLE: моделирование эволюции и сборки галактик и их окружения
Joop Schaye, Robert A. Crain, R. G. Bower, Michelle Furlong, Matthieu Schaller, Tom Theuns, Claudio Dalla Vecchia, Carlos S. Frenk, Ian G. McCarthy, John Helly, Adrian Jenkins, Yetli Rosas-Guevara, Simon D. M. White, M. Baes, C. M. Booth, Peter Camps, Julio F. Navarro, Yan Qu, Alireza Rahmati, Till Sawala, P. Thomas, James W. Trayford
2014-11-11

EAGLE projectactive galactic nuclei feedbackgalaxy formationgalaxy stellar mass functionhydrodynamical simulations
We introduce the Virgo Consortium's Evolution and Assembly of GaLaxies and their Environments (EAGLE) project, a suite of hydrodynamical simulations that follow the formation of galaxies and supermassive black holes in cosmologically representative volumes of a standard Λ cold dark matter universe. We discuss the limitations of such simulations in light of their finite resolution and poorly constrained subgrid physics, and how these affect their predictive power. One major improvement is our treatment of feedback from massive stars and active galactic nuclei (AGN) in which thermal energy is injected into the gas without the need to turn off cooling or decouple hydrodynamical forces, allowing winds to develop without predetermined speed or mass loading factors. Because the feedback efficiencies cannot be predicted from first principles, we calibrate them to the present-day galaxy stellar mass function and the amplitude of the galaxy-central black hole mass relation, also taking galaxy sizes into account. The observed galaxy stellar mass function is reproduced to ≲ 0.2 dex over the full resolved mass range, 108 < M*/M⊙ ≲ 1011, a level of agreement close to that attained by semi-analytic models, and unprecedented for hydrodynamical simulations. We compare our results to a representative set of low-redshift observables not considered in the calibration, and find good agreement with the observed galaxy specific star formation rates, passive fractions, Tully–Fisher relation, total stellar luminosities of galaxy clusters, and column density distributions of intergalactic C iv and O vi. While the mass–metallicity relations for gas and stars are consistent with observations for M* ≳ 109 M⊙ (M* ≳ 1010 M⊙ at intermediate resolution), they are insufficiently steep at lower masses. For the reference model, the gas fractions and temperatures are too high for clusters of galaxies, but for galaxy groups these discrepancies can be resolved by adopting a higher heating temperature in the subgrid prescription for AGN feedback. The EAGLE simulation suite, which also includes physics variations and higher resolution zoomed-in volumes described elsewhere, constitutes a valuable new resource for studies of galaxy formation.
1
Calibrated feedback reproduces the observed galaxy stellar mass function within ≲0.2 dex across 10^8–10^11 M⊙, unprecedented for hydrodynamical simulations.
2
EAGLE introduces cosmological hydrodynamical simulations modeling galaxy and supermassive black-hole formation in representative ΛCDM volumes.
3
Its stellar and AGN feedback injects thermal energy without disabling cooling or decoupling hydrodynamics, allowing winds to emerge without prescribed speeds or mass-loading factors.
4
Mass–metallicity relations are too shallow below the stated stellar-mass thresholds, while cluster gas fractions and temperatures are too high; higher heating temperatures can resolve these discrepancies for galaxy groups.
5
Without calibration to them, the simulations agree well with several low-redshift observables, including specific star-formation rates, passive fractions, the Tully–Fisher relation, cluster stellar luminosities, and intergalactic C IV and O VI column densities.

galaxies, supermassive black holes, and their environments in cosmologically representative volumes of a Λ cold dark matter universe

their formation, evolution, assembly, and observable properties, including stellar mass functions, black hole–galaxy relations, star formation, scaling relations, and gas and metal content

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2014-11-11
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Authors
Joop Schaye
Robert A. Crain
R. G. Bower
Michelle Furlong
Matthieu Schaller
Tom Theuns
Claudio Dalla Vecchia
Carlos S. Frenk
Ian G. McCarthy
John Helly
Adrian Jenkins
Yetli Rosas-Guevara
Simon D. M. White
M. Baes
C. M. Booth
Peter Camps
Julio F. Navarro
Yan Qu
Alireza Rahmati
Till Sawala
P. Thomas
James W. Trayford
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