论文标题
关于边境域中的时间延迟宇宙学的准确性
On the accuracy of time-delay cosmography in the Frontier Fields Cluster MACS J1149.5+2223 with supernova Refsdal
论文作者
论文摘要
我们研究通过对HFF Galaxy群集Mac的强烈镜头分析J1149.5+2223测量的宇宙学参数值的系统效应。我们使用大量光谱镜选择的多个图像的观察到位置,包括超新星“ refsdal”及其估计的时间延迟的位置。从我们在Grillo等人发表的纯$λ$ CDM宇宙学中的参考模型开始。 (2018年),我们确认了SX和S1之间最长可测量的时间延迟的相关性,以及其值与$ H_ {0} $之间的大约线性关系。我们通过考虑其原始估计为$ 345 \ pm 10 $天的时间延迟来进行真正的盲目测试,因为在分析和写作时对此时间延迟的准确度量延迟进行了准确的测量。我们分别研究了群集红移的恒定质量表的影响,对群集主光环的质量密度和群集成员缩放关系中的某些散射的影响。值得注意的是,我们发现这些系统效应不会对$ h_ {0} $和$ω_ {\ rm m} $的推断值引入重大偏见,并且统计不确定性主导了总误差预算:图像sx的时间延迟3%不确定性,包括$ 6%和40%(包括$ 1 $ $ $ $ $),$ $ $ $1σ。 $ω_ {\ rm m} $。此外,我们的模型准确地重现了超新星主机的扩展表面亮度分布,覆盖了$ 3 \ times 10^{4} $ $ $ HST $像素。我们还提出了一种有趣的可能性,即测量黑暗能量密度的状态方程参数$ w $的价值,目前的不确定性为30%。我们得出的结论是,时间播放群集镜片有可能很快成为替代性和竞争性的宇宙学探测器。
We study possible systematic effects on the values of the cosmological parameters measured through strong lensing analyses of the HFF galaxy cluster MACS J1149.5+2223. We use the observed positions of a large set of spectroscopically selected multiple images, including those of supernova "Refsdal" with their estimated time delays. Starting from our reference model in a flat $Λ$CDM cosmology, published in Grillo et al. (2018), we confirm the relevance of the longest measurable time delay, between SX and S1, and an approximately linear relation between its value and that of $H_{0}$. We perform true blind tests by considering a range of time delays around its original estimate of $345 \pm 10$ days, as an accurate measurement of this time delay was not known at the time of analysis and writing. We investigate separately the impact of a constant sheet of mass at the cluster redshift, of a power-law profile for the mass density of the cluster main halo and of some scatter in the cluster member scaling relations. Remarkably, we find that these systematic effects do not introduce a significant bias on the inferred values of $H_{0}$ and $Ω_{\rm m}$ and that the statistical uncertainties dominate the total error budget: a 3% uncertainty on the time delay of image SX translates into approximately 6% and 40% (including both statistical and systematic $1σ$) uncertainties for $H_{0}$ and $Ω_{\rm m}$, respectively. Furthermore, our model accurately reproduces the extended surface brightness distribution of the supernova host, covering more than $3 \times 10^{4}$ $HST$ pixels. We also present the interesting possibility of measuring the value of the equation-of-state parameter $w$ of the dark energy density, currently with a 30% uncertainty. We conclude that time-delay cluster lenses have the potential to become soon an alternative and competitive cosmological probe.