English

The Atacama Cosmology Telescope: Modeling Bulk Atmospheric Motion

Instrumentation and Methods for Astrophysics 2022-03-02 v1 Cosmology and Nongalactic Astrophysics

Abstract

Fluctuating atmospheric emission is a dominant source of noise for ground-based millimeter-wave observations of the CMB temperature anisotropy at angular scales 0.5\gtrsim 0.5^{\circ}. We present a model of the atmosphere as a discrete set of emissive turbulent layers that move with respect to the observer with a horizontal wind velocity. After introducing a statistic derived from the time-lag dependent correlation function for detector pairs in an array, referred to as the pair-lag, we use this model to estimate the aggregate angular motion of the atmosphere derived from time-ordered data from the Atacama Cosmology Telescope (ACT). We find that estimates derived from ACT's CMB observations alone agree with those derived from satellite weather data that additionally include a height-dependent horizontal wind velocity and water vapor density. We also explore the dependence of the measured atmospheric noise spectrum on the relative angle between the wind velocity and the telescope scan direction. In particular, we find that varying the scan velocity changes the noise spectrum in a predictable way. Computing the pair-lag statistic opens up new avenues for understanding how atmospheric fluctuations impact measurements of the CMB anisotropy.

Keywords

Cite

@article{arxiv.2111.01319,
  title  = {The Atacama Cosmology Telescope: Modeling Bulk Atmospheric Motion},
  author = {Thomas W. Morris and Ricardo Bustos and Erminia Calabrese and Steve K. Choi and Adriaan J. Duivenvoorden and Jo Dunkley and Rolando Dünner and Patricio A. Gallardo and Matthew Hasselfield and Adam D. Hincks and Tony Mroczkowski and Sigurd Naess and Michael D. Niemack and Lyman A. Page and Bruce Partridge and Maria Salatino and Suzanne T. Staggs and Jesse Treu and Edward J. Wollack and Zhilei Xu},
  journal= {arXiv preprint arXiv:2111.01319},
  year   = {2022}
}