4.7 Article

GALAXY FORMATION WITH SELF-CONSISTENTLY MODELED STARS AND MASSIVE BLACK HOLES. I. FEEDBACK-REGULATED STAR FORMATION AND BLACK HOLE GROWTH

期刊

ASTROPHYSICAL JOURNAL
卷 738, 期 1, 页码 -

出版社

IOP PUBLISHING LTD
DOI: 10.1088/0004-637X/738/1/54

关键词

galaxies: active; galaxies: formation; galaxies: nuclei; stars: formation

资金

  1. William R. and Sara Hart Kimball Stanford Graduate Fellowship
  2. NASA through Space Telescope Science Institute [120-6370, NAS 5-26555]
  3. Badenwurttemberg-Stiftung [P-LS-SP11/18]
  4. Heidelberg Institut fur Theoretische Studien
  5. Stuart Marshall, Ken Zhou, and SLAC computational team

向作者/读者索取更多资源

There is mounting evidence for the coevolution of galaxies and their embedded massive black holes (MBHs) in a hierarchical structure formation paradigm. To tackle the nonlinear processes of galaxy-MBH interaction, we describe a self-consistent numerical framework which incorporates both galaxies and MBHs. The high-resolution adaptive mesh refinement (AMR) code Enzo is modified to model the formation and feedback of molecular clouds at their characteristic scale of 15.2 pc and the accretion of gas onto an MBH. Two major channels of MBH feedback, radiative feedback (X-ray photons followed through full three-dimensional adaptive ray tracing) and mechanical feedback (bipolar jets resolved in high-resolution AMR), are employed. We investigate the coevolution of a 9.2 x 10(11) M-circle dot galactic halo and its 10(5) M-circle dot embedded MBH at redshift 3 in a cosmological Lambda CDM simulation. The MBH feedback heats the surrounding interstellar medium (ISM) up to 10(6) K through photoionization and Compton heating and locally suppresses star formation in the galactic inner core. The feedback considerably changes the stellar distribution there. This new channel of feedback from a slowly growing MBH is particularly interesting because it is only locally dominant and does not require the heating of gas globally on the disk. The MBH also self-regulates its growth by keeping the surrounding ISM hot for an extended period of time.

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