English

The Hydrogen Epoch of Reionization Array Dish III: Measuring Chromaticity of Prototype Element with Reflectometry

Instrumentation and Methods for Astrophysics 2018-03-21 v2

Abstract

The experimental efforts to detect the redshifted 21 cm signal from the Epoch of Reionization (EoR) are limited predominantly by the chromatic instrumental systematic effect. The delay spectrum methodology for 21 cm power spectrum measurements brought new attention to the critical impact of an antenna's chromaticity on the viability of making this measurement. This methodology established a straightforward relationship between time-domain response of an instrument and the power spectrum modes accessible to a 21 cm EoR experiment. We examine the performance of a prototype of the Hydrogen Epoch of Reionization Array (HERA) array element that is currently observing in Karoo desert, South Africa. We present a mathematical framework to derive the beam integrated frequency response of a HERA prototype element in reception from the return loss measurements between 100-200 MHz and determined the extent of additional foreground contamination in the delay space. The measurement reveals excess spectral structures in comparison to the simulation studies of the HERA element. Combined with the HERA data analysis pipeline that incorporates inverse covariance weighting in optimal quadratic estimation of power spectrum, we find that in spite of its departure from the simulated response, HERA prototype element satisfies the necessary criteria posed by the foreground attenuation limits and potentially can measure the power spectrum at spatial modes as low as k>0.1hk_{\parallel} > 0.1h~Mpc1^{-1}. The work highlights a straightforward method for directly measuring an instrument response and assessing its impact on 21 cm EoR power spectrum measurements for future experiments that will use reflector-type antenna.

Keywords

Cite

@article{arxiv.1701.03209,
  title  = {The Hydrogen Epoch of Reionization Array Dish III: Measuring Chromaticity of Prototype Element with Reflectometry},
  author = {Nipanjana Patra and Aaron R. Parsons and David R. DeBoer and Nithyanandan Thyagarajan and Aaron Ewall-Wice and Gilbert Hsyu and Tsz Kuk Leung and Cherie K. Day and James E. Aguirre and Paul Alexander and Zaki S. Ali and Adam P. Beardsley and Judd D. Bowman and Richard F. Bradley and Chris L. Carilli and Carina Cheng and Eloy de Lera Acedo and Joshua S. Dillon and Gcobisa Fadana and Nicolas Fagnoni and Randall Fritz and Steve R. Furlanetto and Brian Glendenning and Bradley Greig and Jasper Grobbelaar and Bryna J. Hazelton and Jacqueline N. Hewitt and Daniel C. Jacobs and Austin Julius and MacCalvin Kariseb and Saul A. Kohn and Anna Lebedeva and Telalo Lekalake and Adrian Liu and Anita Loots and David MacMahon and Lourence Malan and Cresshim Malgas and Matthys Maree and Zachary Martinot and Nathan Mathison and Eunice Matsetela and Andrei Mesinger and Miguel F. Morales and Abraham R. Neben and Samantha Pieterse and Jonathan C. Pober and Nima Razavi-Ghods and Jon Ringuette and James Robnett and Kathryn Rosie and Raddwine Sell and Craig Smith and Angelo Syce and Max Tegmark and Peter K. G. Williams and Haoxuan Zheng},
  journal= {arXiv preprint arXiv:1701.03209},
  year   = {2018}
}

Comments

13 pages, 10 figures, Submitted to APJ