| Online-Ressource |
Verfasst von: | Kannan, Rahul [VerfasserIn]  |
| Vogelsberger, Mark [VerfasserIn]  |
| Pfrommer, Christoph [VerfasserIn]  |
| Weinberger, Rainer [VerfasserIn]  |
| Springel, Volker [VerfasserIn]  |
| Hernquist, Lars [VerfasserIn]  |
| Puchwein, Ewald [VerfasserIn]  |
| Pakmor, Rüdiger [VerfasserIn]  |
Titel: | Increasing black hole feedback-induced quenching with anisotropic thermal conduction |
Verf.angabe: | Rahul Kannan, Mark Vogelsberger, Christoph Pfrommer, Rainer Weinberger, Volker Springel, Lars Hernquist, Ewald Puchwein, and Rüdiger Pakmor |
E-Jahr: | 2017 |
Jahr: | 2017 March 7 |
Umfang: | 6 S. |
Fussnoten: | Gesehen am 24.10.2017 |
Titel Quelle: | Enthalten in: The astrophysical journal / 2 |
Ort Quelle: | London : Institute of Physics Publ., 1995 |
Jahr Quelle: | 2017 |
Band/Heft Quelle: | 837(2017,2) Artikel-Nummer L18, 6 Seiten |
ISSN Quelle: | 2041-8213 |
Abstract: | Feedback from central supermassive black holes is often invoked to explain the low star formation rates (SFRs) in the massive galaxies at the centers of galaxy clusters. However, the detailed physics of the coupling of the injected feedback energy with the intracluster medium (ICM) is still unclear. Using high-resolution magnetohydrodynamic cosmological simulations of galaxy cluster formation, we investigate the role of anisotropic thermal conduction in shaping the thermodynamic structure of clusters, and in particular, in modifying the impact of black hole feedback. Stratified anisotropically conducting plasmas are formally always unstable, and thus more prone to mixing, an expectation borne out by our results. The increased mixing efficiently isotropizes the injected feedback energy, which in turn significantly improves the coupling between the feedback energy and the ICM. This facilitates an earlier disruption of the cool-core, reduces the SFR by more than an order of magnitude, and results in earlier quenching despite an overall lower amount of feedback energy injected into the cluster core. With conduction, the metallicity gradients and dispersions are lowered, aligning them better with observational constraints. These results highlight the important role of thermal conduction in establishing and maintaining the quiescence of massive galaxies. |
DOI: | doi:10.3847/2041-8213/aa624b |
URL: | Bitte beachten Sie: Dies ist ein Bibliographieeintrag. Ein Volltextzugriff für Mitglieder der Universität besteht hier nur, falls für die entsprechende Zeitschrift/den entsprechenden Sammelband ein Abonnement besteht oder es sich um einen OpenAccess-Titel handelt.
Volltext: http://dx.doi.org/10.3847/2041-8213/aa624b |
| DOI: https://doi.org/10.3847/2041-8213/aa624b |
Datenträger: | Online-Ressource |
Sprache: | eng |
K10plus-PPN: | 1564708799 |
Verknüpfungen: | → Zeitschrift |
Increasing black hole feedback-induced quenching with anisotropic thermal conduction / Kannan, Rahul [VerfasserIn]; 2017 March 7 (Online-Ressource)