论文标题
开放簇化学丰度和映射调查:IV。使用SDSS/Apogee DR16的128个开放群集的丰度
The Open Cluster Chemical Abundances and Mapping Survey: IV. Abundances for 128 Open Clusters using SDSS/APOGEE DR16
论文作者
论文摘要
开放的集群化学丰度和映射(OCCAM)调查旨在通过构建数百个开放式群集的大型,全面,统一,基于红外的光谱数据集来限制关键的银河动力学和化学演化参数。 OCCAM调查的第四个贡献使用了128个开放式群集样本的SDSS/Apogee DR16进行了分析,我们根据其颜色标记的出现来指定其中71个是“高质量”。我们发现衍生出的[Fe/H]丰度的脱孔DR16与以前的高分辨率光谱开放式群集丰度研究非常吻合。使用高质量样本,我们测量了16个元素中的银河系丰度梯度,并找到某些[X/FE]梯度的演变作为年龄的函数。我们找到了一个整体银河[Fe/h] vs R_GC梯度$ -0.068 \ pm 0.001 $ dex kpc $^{ - 1} $,范围内$ 6 <$ r_gc $ <$ r_gc $ <13.9 $ kpc;但是,我们注意到,该结果对所使用的距离目录敏感,其变化多达15%。我们正式得出[Fe/H]丰度梯度中的突破,作为第一次梯度拟合中的自由参数。我们还测量了O,Mg,S,Ca,Mn,Cr,Cu,Na,Al和K的明显银河梯度,其中一些是第一次测量的。我们的大型样本使我们能够探索四个填充的年龄箱,以探索大量元素的梯度的时间演变,并评论可能对银河化学化学演化和径向迁移的影响。
The Open Cluster Chemical Abundances and Mapping (OCCAM) survey aims to constrain key Galactic dynamical and chemical evolution parameters by the construction of a large, comprehensive, uniform, infrared-based spectroscopic data set of hundreds of open clusters. This fourth contribution from the OCCAM survey presents analysis using SDSS/APOGEE DR16 of a sample of 128 open clusters, 71 of which we designate to be "high quality" based on the appearance of their color-magnitude diagram. We find the APOGEE DR16 derived [Fe/H] abundances to be in good agreement with previous high resolution spectroscopic open cluster abundance studies. Using the high quality sample, we measure Galactic abundance gradients in 16 elements, and find evolution of some of the [X/Fe] gradients as a function of age. We find an overall Galactic [Fe/H] vs R_GC gradient of $-0.068 \pm 0.001$ dex kpc$^{-1}$ over the range of $6 <$ R_GC $< 13.9$ kpc; however, we note that this result is sensitive to the distance catalog used, varying as much as 15%. We formally derive the location a break in the [Fe/H] abundance gradient as a free parameter in the gradient fit for the first time. We also measure significant Galactic gradients in O, Mg, S, Ca, Mn, Cr, Cu, Na, Al, and K, some of which are measured for the first time. Our large sample allows us to explore four well-populated age bins to explore the time evolution of gradients for a large number of elements and comment on possible implications for Galactic chemical evolution and radial migration.