封装超宽带映射阵列(PUMA):用于宇宙学和瞬变的射电望远镜

A. Slosar, Tzu-Ching Chang, Z. Ahmed, A. Stebbins, C. Sheehy, P. Bull, Evan J. Arena, J. Shaw, M. White, W. Tyndall, Adrian Liu, N. Sehgal, D. Alonso, R. Davé, D. Parkinson, C. Ng, P. O'Connor, A. Nomerotski, J. Prochaska, E. Silverstein, D. Rapetti, C. Dvorkin, E. Schaan, R. Ansari, R. Flauger, L. Knox, P. Meerburg, B. Saliwanchik, S. Foreman, H. Padmanabhan, T. McClintock, K. Bandura, R. Shirley, Dionysios Karagiannis, S. Ferraro, M. Johnson, A. Kaurov, A. V. Engelen, N. Battaglia, M. Amin, G. Tucker, M. Münchmeyer, D. Jacobs, P. Stankus, Daniel Green, A. Obuljen, K. Masui, L. Newburgh, K. Moodley, J. Blazek, E. Castorina, E. Sheldon, F. Villaescusa-Navarro, Yian Ma, P. Timbie, J. Frisch, J. Dillon, B. Wallisch, G. Holder, M. Loverde, T. Slatyer, L. Connor, S. Rajendran
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引用次数: 67

摘要

PUMA是一种超宽带、低分辨率、凌日干涉射电望远镜,工作频率为200-1100 MHz。它的设计是由六个科学目标驱动的,这些目标跨越三个科学主题:暗能量物理学(测量宇宙膨胀的历史和增长,直到$z=6$),膨胀物理学(限制原始的非高斯性和原始特征)和瞬态无线电天空(探测一百万快速无线电爆发和跟踪ska发现的脉冲星)。我们提出了两种阵列配置,由六边形紧密排列的6米碟排列组成,填充系数为50%。最初的5000个元素的“小型阵列”在科学上是令人信服的,可以作为一个示范,并为完整的32000个元素的“完整阵列”奠定基础。作为一个21厘米的强度测绘望远镜,该项目的噪声相当于传统的光谱星系巡天,包括6亿个和25亿个星系,其共同运动波数为$k=0.5\,h\mathrm{Mpc}^{-1}$,分别跨越红移范围$z = 0.3 - 6$。在红移超过$z=2$时,21厘米技术是绘制宇宙地图的一种独特而强大的方法,而低红移范围将允许与现有和即将进行的调查进行大量的相互关联。该计划是由超宽带无线电馈电的发展、具有成本效益的碟形结构方法、由电信行业驱动的商用射频电子设备和足够的计算能力的出现实现的,以促进实时信号处理,充分利用大规模无线电阵列的潜力。该项目的小型阵列和全阵列配置的2019财年估计建设成本分别为5500万美元和3.3亿美元。包括研发、设计、运营和科学分析在内,成本分别上升至1.25亿美元和6亿美元。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Packed Ultra-wideband Mapping Array (PUMA): A Radio Telescope for Cosmology and Transients
PUMA is a proposal for an ultra-wideband, low-resolution and transit interferometric radio telescope operating at $200-1100\,\mathrm{MHz}$. Its design is driven by six science goals which span three science themes: the physics of dark energy (measuring the expansion history and growth of the universe up to $z=6$), the physics of inflation (constraining primordial non-Gaussianity and primordial features) and the transient radio sky (detecting one million fast radio bursts and following up SKA-discovered pulsars). We propose two array configurations composed of hexagonally close-packed 6m dish arrangements with 50% fill factor. The initial 5,000 element 'petite array' is scientifically compelling, and can act as a demonstrator and a stepping stone to the full 32,000 element 'full array'. Viewed as a 21cm intensity mapping telescope, the program has the noise equivalent of a traditional spectroscopic galaxy survey comprised of 0.6 and 2.5 billion galaxies at a comoving wavenumber of $k=0.5\,h\mathrm{Mpc}^{-1}$ spanning the redshift range $z = 0.3 - 6$ for the petite and full configurations, respectively. At redshifts beyond $z=2$, the 21cm technique is a uniquely powerful way of mapping the universe, while the low-redshift range will allow for numerous cross-correlations with existing and upcoming surveys. This program is enabled by the development of ultra-wideband radio feeds, cost-effective dish construction methods, commodity radio-frequency electronics driven by the telecommunication industry and the emergence of sufficient computing power to facilitate real-time signal processing that exploits the full potential of massive radio arrays. The project has an estimated construction cost of 55 and 330 million FY19 USD for the petite and full array configurations. Including R&D, design, operations and science analysis, the cost rises to 125 and 600 million FY19 USD, respectively.
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