论文标题
将星系簇三轴性纳入堆叠簇弱透镜分析
Incorporating galaxy cluster triaxiality in stacked cluster weak lensing analyses
论文作者
论文摘要
星系簇的计数提供了宇宙学的高精度探针,但是对系统错误的控制将决定该测量的准确性。使用Buzzard模拟,我们量化了这样一个系统的一个系统,即用RedMapper光学群集发现算法鉴定的簇的三轴性分布,该算法在Dark Energy Survey-1年(DES Y1)群集宇宙学分析中使用。我们测试Redmapper选择是否会偏向簇的形状和方向,并发现它仅偏向方向,优先选择沿视线的主要轴的簇。将Richness-Mass关系建模为对数线性关系,我们发现日志振幅$ \ ln(a)$从最低到最高方向箱的增强,其意义为$14σ$,而丰富的slope slope和Interinsic sckation的方向依赖性依赖性依赖性很小。我们还发现,不同方向箱中与簇相关的暗光晕的弱透镜剪切曲线比类似于可以用cauchy函数量化的“瓶颈”形状。我们在集群宇宙学中测试方向与其他两个领先的系统的相关性 - 误会和投影 - 并找到无关的相关性。将观察到的富度和镜头曲线的三轴性偏置的分析模板映射为Redmapper簇可观察到的Richness-Binned镜头曲线。由此产生的质量偏见证实了DES Y1发现三轴性是聚类宇宙学的主要偏见来源。但是,偏见的丰富性依赖性证实了三轴性并不能完全解决DES Y1群集宇宙学和其他探针之间低浓度的张力。我们的模型可用于量化三轴性偏差对即将进行星系簇的弱透镜调查的宇宙学约束的影响。
Counts of galaxy clusters offer a high-precision probe of cosmology, but control of systematic errors will determine the accuracy of this measurement. Using Buzzard simulations, we quantify one such systematic, the triaxiality distribution of clusters identified with the redMaPPer optical cluster finding algorithm, which was used in the Dark Energy Survey Year-1 (DES Y1) cluster cosmology analysis. We test whether redMaPPer selection biases the clusters' shape and orientation and find that it only biases orientation, preferentially selecting clusters with their major axes oriented along the line of sight. Modeling the richness-mass relation as a log-linear relation, we find that the log-richness amplitude $\ln(A)$ is boosted from the lowest to highest orientation bin with a significance of $14σ$, while the orientation dependence of the richness-mass slope and intrinsic scatter is minimal. We also find that the weak lensing shear-profile ratios of cluster-associated dark halos in different orientation bins resemble a "bottleneck" shape that can be quantified with a Cauchy function. We test the correlation of orientation with two other leading systematics in cluster cosmology -- miscentering and projection -- and find a null correlation. Analytic templates for the triaxiality bias of observed-richness and lensing profiles are mapped as corrections to the observable of richness-binned lensing profiles for redMaPPer clusters. The resulting mass bias confirms the DES Y1 finding that triaxiality is a leading source of bias in cluster cosmology. However, the richness-dependence of the bias confirms that triaxiality does not fully resolve the tension at low-richness between DES Y1 cluster cosmology and other probes. Our model can be used for quantifying the impact of triaxiality bias on cosmological constraints for upcoming weak lensing surveys of galaxy clusters.