The Astrophysical Journal Supplement Series · 2013 · 381 citations · 21 references
The study develops an absolute centimeter‑wavelength flux density scale by combining VLA Mars–calibrator flux ratios with the Rudy thermophysical Mars model calibrated to the WMAP absolute scale. Polynomial coefficients for 3C48, 3C138, and 3C147 were derived for 17 epochs (1983–2012), and brightness temperatures for Venus, Uranus, and Neptune were measured across 1–50 GHz. The four sources 3C123, 3C196, 3C286, and 3C295 vary by less than ~5 % per century over 1–50 GHz, yielding 1–3 % accurate spectral flux density polynomials, with 3C286 being the most compact and flat‑spectrum standard, while 3C48, 3C138, 3C147, NGC 7027, NGC 6542, and MWC 349 show significant variability.
We develop an absolute flux density scale for centimeter-wavelength astronomy by combining accurate flux density ratios determined by the Very Large Array between the planet Mars and a set of potential calibrators with the Rudy thermophysical emission model of Mars, adjusted to the absolute scale established by the Wilkinson Microwave Anisotropy Probe. The radio sources 3C123, 3C196, 3C286, and 3C295 are found to be varying at a level of less than ∼5% per century at all frequencies between 1 and 50 GHz, and hence are suitable as flux density standards. We present polynomial expressions for their spectral flux densities, valid from 1 to 50 GHz, with absolute accuracy estimated at 1%–3% depending on frequency. Of the four sources, 3C286 is the most compact and has the flattest spectral index, making it the most suitable object on which to establish the spectral flux density scale. The sources 3C48, 3C138, 3C147, NGC 7027, NGC 6542, and MWC 349 show significant variability on various timescales. Polynomial coefficients for the spectral flux density are developed for 3C48, 3C138, and 3C147 for each of the 17 observation dates, spanning 1983–2012. The planets Venus, Uranus, and Neptune are included in our observations, and we derive their brightness temperatures over the same frequency range.
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THE TEMPERATURE OF THE COSMIC MICROWAVE BACKGROUND
The Astrophysical Journal · 2009 · 1.1K citations · Full text
Calibrator Design for the<i>COBE</i>Far‐Infrared Absolute Spectrophotometer (FIRAS)
John C. Mather, D. J. Fixsen, R. A. Shafer et al. · The Astrophysical Journal · 1999 · 499 citations · Full text