论文标题
c-eagle群集模拟中热量内气体金属性的红移演变
Redshift evolution of the hot intracluster gas metallicity in the C-EAGLE cluster simulations
论文作者
论文摘要
银河系中金属的丰度和分布包含有关其化学史和进化的宝贵信息。通过查看金属性如何随红移发展,可以约束不同的金属生产通道。我们使用C-Eagle簇,一个30个高分辨率的样本($ M_ {gas} \ simeq 1.8 \ times 10^{6} $ m $ _ {\ odot} $)集群缩放模拟,以研究金属的红移演化,特别关注集群郊区郊区。早期的富集模型,其中大多数金属在高红移的群集祖细胞的核心中产生,这表明群集郊区的金属自$ z = 2 $以来没有显着发展。使用C-EAGLE样品,我们发现与早期富集模型的合理一致,因为整个样品的金属丰度很小,金属丰度很少,至少$ z = 2 $。 FE是FE是,由于主要是由IA型超新星产生的,因此发现金属性的径向依赖性在低红移时进化,而与核心偏离的超新星相比,这更可能在以后形成。我们还发现,在其他模拟或基于观察的金属性研究中尚未看到C-Eagle簇的核心中金属丰度的大量红移演化。由于我们发现这种演变是由低金属气体积聚驱动的,因此表明流出,AGN加热材料和周围气体之间的相互作用对于确定簇中的核心丰度很重要。
The abundance and distribution of metals in galaxy clusters contains valuable information about their chemical history and evolution. By looking at how metallicity evolves with redshift, it is possible to constrain the different metal production channels. We use the C-EAGLE clusters, a sample of 30 high resolution ($m_{gas} \simeq 1.8\times 10^{6}$ M$_{\odot}$) cluster zoom simulations, to investigate the redshift evolution of metallicity, with particular focus on the cluster outskirts. The early enrichment model, in which the majority of metals are produced in the core of cluster progenitors at high redshift, suggests that metals in cluster outskirts have not significantly evolved since $z=2$. With the C-EAGLE sample, we find reasonable agreement with the early enrichment model as there is very little scatter in the metallicity abundance at large radius across the whole sample, out to at least $z=2$. The exception is Fe for which the radial dependence of metallicity was found to evolve at low redshift as a result of being mainly produced by Type Ia supernovae, which are more likely to be formed at later times than core-collapse supernovae. We also found considerable redshift evolution of metal abundances in the cores of the C-EAGLE clusters which has not been seen in other simulations or observation based metallicity studies. Since we find this evolution to be driven by accretion of low metallicity gas, it suggests that the interaction between outflowing, AGN heated material and the surrounding gas is important for determining the core abundances in clusters.