论文标题
早期宇宙中尘埃的种子黑洞的加速生长
Accelerated growth of seed black holes by dust in the early universe
论文作者
论文摘要
我们探索灰尘对早期宇宙中种子黑洞(BHS)生长的影响。先前的一维辐射流动力学(RHD)模拟表明,灰尘上的辐射压力增加比化学原始气体的情况进一步抑制积聚率。使用Enzo+Moray代码,我们进行了一组3D RHD模拟,以在尘土飞扬的星际介质(ISM)中积聚BHS。我们使用改良的烧烤冷却文库来考虑其非平衡化学中的粉尘物理。 BH经历了早期进化阶段,在该阶段,电离BH辐射在积聚和反馈之间循环时会产生一个振荡的HII区域。随着模拟的进行,密集的冷气积聚在离子化区域之外,中性培养基的流入符合辐射压力驱动的流出。在后期,高密度的气流发展并破坏了离子化区域的准球形对称性,从而迅速提高了吸积率。晚期的特征是强度离子流出的共存和加油高密度的气体流入。平均积聚率随着金属度的达到Z $ \ sim $ 0.01-0.1 $ \,z_ \ odot $的峰值的增加,比原始气体高的一个数量级。但是,随着金属性接近太阳丰度,随着辐射压力的强度足以驱动高密度气体,平均积聚率下降。我们的结果表明,尘土飞扬的金属贫穷的ISM可以加速早期宇宙中BHS的生长速度,但是,随着ISM进一步丰富了太阳丰度,可能会震惊其生长。
We explore the effect of dust on the growth of seed black holes (BHs) in the early universe. Previous 1D radiation-hydrodynamic (RHD) simulations show that increased radiation pressure on dust further suppresses the accretion rate than the case for the chemically pristine gas. Using the Enzo+Moray code, we perform a suite of 3D RHD simulations of accreting BHs in a dusty interstellar medium (ISM). We use the modified Grackle cooling library to consider dust physics in its non-equilibrium chemistry. The BH goes through an early evolutionary phase, where ionizing BH radiation creates an oscillating HII region as it cycles between accretion and feedback. As the simulations proceed, dense cold gas accumulates outside the ionized region where inflow from the neutral medium meets the outflow driven by radiation pressure. In the late phase, high-density gas streams develop and break the quasi-spherical symmetry of the ionized region, rapidly boosting the accretion rate. The late phase is characterized by the coexistence of strong ionized outflows and fueling high-density gas inflows. The mean accretion rate increases with metallicity reaching a peak at Z$\sim$0.01-0.1$\,Z_\odot$, one order of magnitude higher than the one for pristine gas. However, as the metallicity approaches the solar abundance, the mean accretion rate drops as the radiation pressure becomes strong enough to drive out the high-density gas. Our results indicate that a dusty metal-poor ISM can accelerate the growth rate of BHs in the early universe, however, can stun its growth as the ISM is further enriched toward the solar abundance.