论文标题
来自电离阵列的氢时代的成像和建模数据
Imaging and Modeling Data from the Hydrogen Epoch of Reionization Array
论文作者
论文摘要
我们分析了来自电离阵列的氢时代的数据。这是一系列有关闭合相延迟光谱技术的论文中的第三份,旨在检测宇宙回离的HI 21cm发射。我们介绍了功率谱分析中使用的数据和模型的详细信息,并讨论了该过程的局限性。我们将图像和可见性光谱与HERA数据制成的图像和可见性光谱与基于GLEAM调查产生的并行数量,并结合了HERA望远镜模型。我们发现,与模型从模型产生的图像之间的图像之间的合理达成共识,一直到混乱级别。对于可见性光谱,整个$ \ sim 80 $ MHz的模型与数据之间存在广泛的一致性。但是,只有闪光源的模型不会在观察到的可见性光谱范围$ \ sim 10 $ 10 $ MHz上在29 m碱基上观察到的可见性光谱中的数十含百分之百分比。我们发现,这种结构可能是由于弥漫性银河发射,主要是银河面,从而填充了天线初级光束的远处。我们表明,我们目前对弥漫性天空射击发射的频率依赖性以及大顶角的主要光束的知识不足以提供模型中弥漫结构的准确再现。我们讨论了由于模型中缺少的结构而引起的含义,包括校准以及搜索HI 21cm信号以及可能的缓解技术。
We analyze data from the Hydrogen Epoch of Reionization Array. This is the third in a series of papers on the closure phase delay-spectrum technique designed to detect the HI 21cm emission from cosmic reionization. We present the details of the data and models employed in the power spectral analysis, and discuss limitations to the process. We compare images and visibility spectra made with HERA data, to parallel quantities generated from sky models based on the GLEAM survey, incorporating the HERA telescope model. We find reasonable agreement between images made from HERA data, with those generated from the models, down to the confusion level. For the visibility spectra, there is broad agreement between model and data across the full band of $\sim 80$MHz. However, models with only GLEAM sources do not reproduce a roughly sinusoidal spectral structure at the tens of percent level seen in the observed visibility spectra on scales $\sim 10$ MHz on 29 m baselines. We find that this structure is likely due to diffuse Galactic emission, predominantly the Galactic plane, filling the far sidelobes of the antenna primary beam. We show that our current knowledge of the frequency dependence of the diffuse sky radio emission, and the primary beam at large zenith angles, is inadequate to provide an accurate reproduction of the diffuse structure in the models. We discuss implications due to this missing structure in the models, including calibration, and in the search for the HI 21cm signal, as well as possible mitigation techniques.