English

Antarctic Surface Reflectivity Calculations and Measurements from the ANITA-4 and HiCal-2 Experiments

Instrumentation and Methods for Astrophysics 2018-09-12 v1

Abstract

The balloon-borne HiCal radio-frequency (RF) transmitter, in concert with the ANITA radio-frequency receiver array, is designed to measure the Antarctic surface reflectivity in the RF wavelength regime. The amplitude of surface-reflected transmissions from HiCal, registered as triggered events by ANITA, can be compared with the direct transmissions preceding them by O(10) microseconds, to infer the surface power reflection coefficient R\cal{R}. The first HiCal mission (HiCal-1, Jan. 2015) yielded a sample of 100 such pairs, resulting in estimates of R\cal{R} at highly-glancing angles (i.e., zenith angles approaching 9090^\circ), with measured reflectivity for those events which exceeded extant calculations. The HiCal-2 experiment, flying from Dec., 2016-Jan., 2017, provided an improvement by nearly two orders of magnitude in our event statistics, allowing a considerably more precise mapping of the reflectivity over a wider range of incidence angles. We find general agreement between the HiCal-2 reflectivity results and those obtained with the earlier HiCal-1 mission, as well as estimates from Solar reflections in the radio-frequency regime. In parallel, our calculations of expected reflectivity have matured; herein, we use a plane-wave expansion to estimate the reflectivity R from both a flat, smooth surface (and, in so doing, recover the Fresnel reflectivity equations) and also a curved surface. Multiplying our flat-smooth reflectivity by improved Earth curvature and surface roughness corrections now provides significantly better agreement between theory and the HiCal 2a/2b measurements.

Keywords

Cite

@article{arxiv.1801.08909,
  title  = {Antarctic Surface Reflectivity Calculations and Measurements from the ANITA-4 and HiCal-2 Experiments},
  author = {S. Prohira and A. Novikov and P. Dasgupta and P. Jain and S. Nande and P. Allison and O. Banerjee and L. Batten and J. J. Beatty and K. Belov and D. Z. Besson and W. R. Binns and V. Bugaev and P. Cao and C. Chen and P. Chen and J. M. Clem and A. Connolly and L. Cremonesi and B. Dailey and C. Deaconu and P. F. Dowkontt and B. D. Fox and J. Gordon and P. W. Gorham and C. Hast and B. Hill and R. Hupe and M. H. Israel and J. Lam and T. C. Liu and A. Ludwig and S. Matsuno and C. Miki and M. Mottram and K. Mulrey and J. Nam and R. J. Nichol and E. Oberla and K. Ratzlaff and B. F. Rauch and A. Romero-Wolf and B. Rotter and J. Russell and D. Saltzberg and D. Seckel and H. Schoorlemmer and S. Stafford and J. Stockham and M. Stockham and B. Strutt and K. Tatem and G. S. Varner and A. G. Vieregg and S. A. Wissel and F. Wu and R. Young},
  journal= {arXiv preprint arXiv:1801.08909},
  year   = {2018}
}

Comments

submitted to Astropart. Phys