论文标题
FIRE-2矮人中的空间分辨气相金属性:与反馈和合并的模拟中金属关系的延迟演变
Spatially Resolved Gas-phase Metallicity in FIRE-2 Dwarfs: Late-Time Evolution of Metallicity Relations in Simulations with Feedback and Mergers
论文作者
论文摘要
We present an analysis of spatially resolved gas-phase metallicity relations in five dwarf galaxies ($M_{halo} \approx 10^{11} M_\odot$, $M_\star \approx 10^{8.8}-10^{9.6} M_\odot$) from the FIRE-2 (Feedback in Realistic Environments) cosmological zoom-in simulation suite, which include在1.4个回旋期内,气体中金属的亚网格湍流混合的明确模型,接近$ z \ 0 $,并将我们的发现与观察结果进行比较。尽管这些矮星系代表了一个不同的样本,但我们发现所有模拟星系与观察到的质量金属度(MZR)和质量金属梯度(MZGR)关系匹配。我们注意到,在所有五个星系中,金属性在星际介质(ISM)之间有效相同,其中95美元$ \%$在$ \ pm $ \ pm $ \ pm $ 0.1 $ 0.1 dex之间,包括寒冷和密度的气体,包括$ t <500 $ k和$ k和$ n _ _ { $ t \大约10^4 $ k脊线)和nebular区域(在10个MYR平均恒星形成速率的电离气体中为非零)。我们发现,寒冷和密集气体和电离气体/螺旋区域之间的相对金属性的大部分散射可以归因于局部的Starburst事件或金属贫困的流入。我们还注意到,在我们的一个星系M11E中存在主要合并,对空间解析图中的金属分布产生了重大影响,显示了两个强的金属性峰并在主星系中触发Starburst。
We present an analysis of spatially resolved gas-phase metallicity relations in five dwarf galaxies ($M_{halo} \approx 10^{11} M_\odot$, $M_\star \approx 10^{8.8}-10^{9.6} M_\odot$) from the FIRE-2 (Feedback in Realistic Environments) cosmological zoom-in simulation suite, which include an explicit model for sub-grid turbulent mixing of metals in gas, near $z\approx 0$, over a period of 1.4 Gyrs, and compare our findings with observations. While these dwarf galaxies represent a diverse sample, we find that all simulated galaxies match the observed mass-metallicity (MZR) and mass-metallicity gradient (MZGR) relations. We note that in all five galaxies, the metallicities are effectively identical between phases of the interstellar medium (ISM), with 95$\%$ being within $\pm$0.1 dex between various ISM phases, including the cold and dense gas ($T < 500$ K and $n_{\rm H} > 1$ cm$^{-3}$), ionized gas (near the H$α$ $T \approx 10^4$ K ridge-line), and nebular regions (ionized gas where the 10 Myr-averaged star formation rate is non-zero). We find that most of the scatter in relative metallicity between cold and dense gas and ionized gas/nebular regions can be attributed to either local starburst events or metal-poor inflows. We also note the presence of a major merger in one of our galaxies, m11e, with a substantial impact on the metallicity distribution in the spatially resolved map, showing two strong metallicity peaks and triggering a starburst in the main galaxy.