English

The LOFAR long baseline snapshot calibrator survey

Instrumentation and Methods for Astrophysics 2015-01-28 v1

Abstract

Aims. An efficient means of locating calibrator sources for International LOFAR is developed and used to determine the average density of usable calibrator sources on the sky for subarcsecond observations at 140 MHz. Methods. We used the multi-beaming capability of LOFAR to conduct a fast and computationally inexpensive survey with the full International LOFAR array. Sources were pre-selected on the basis of 325 MHz arcminute-scale flux density using existing catalogues. By observing 30 different sources in each of the 12 sets of pointings per hour, we were able to inspect 630 sources in two hours to determine if they possess a sufficiently bright compact component to be usable as LOFAR delay calibrators. Results. Over 40% of the observed sources are detected on multiple baselines between international stations and 86 are classified as satisfactory calibrators. We show that a flat low-frequency spectrum (from 74 to 325 MHz) is the best predictor of compactness at 140 MHz. We extrapolate from our sample to show that the density of calibrators on the sky that are sufficiently bright to calibrate dispersive and non-dispersive delays for the International LOFAR using existing methods is 1.0 per square degree. Conclusions. The observed density of satisfactory delay calibrator sources means that observations with International LOFAR should be possible at virtually any point in the sky, provided that a fast and efficient search using the methodology described here is conducted prior to the observation to identify the best calibrator.

Keywords

Cite

@article{arxiv.1411.2743,
  title  = {The LOFAR long baseline snapshot calibrator survey},
  author = {J. Moldón and A. T. Deller and O. Wucknitz and N. Jackson and A. Drabent and T. Carozzi and J. Conway and A. D. Kapińska and P. McKean and L. Morabito and E. Varenius and P. Zarka and J. Anderson and A. Asgekar and I. M. Avruch and M. E. Bell and M. J. Bentum and G. Bernardi and P. Best and L. Bîrzan and J. Bregman and F. Breitling and J. W. Broderick and M. Brüggen and H. R. Butcher and D. Carbone and B. Ciardi and F. de Gasperin and E. de Geus and S. Duscha and J. Eislöffel and D. Engels and H. Falcke and R. A. Fallows and R. Fender and C. Ferrari and W. Frieswijk and M. A. Garrett and J. Grießmeier and A. W. Gunst and J. P. Hamaker and T. E. Hassall and G. Heald and M. Hoeft and E. Juette and A. Karastergiou and V. I. Kondratiev and M. Kramer and M. Kuniyoshi and G. Kuper and P. Maat and G. Mann and S. Markoff and R. McFadden and D. McKay-Bukowski and R. Morganti and H. Munk and M. J. Norden and A. R. Offringa and E. Orru and H. Paas and M. Pandey-Pommier and R. Pizzo and A. G. Polatidis and W. Reich and H. Röttgering and A. Rowlinson and A. M. M. Scaife and D. Schwarz and J. Sluman and O. Smirnov and B. W. Stappers and M. Steinmetz and M. Tagger and Y. Tang and C. Tasse and S. Thoudam and M. C. Toribio and R. Vermeulen and C. Vocks and R. J. van Weeren and S. White and M. W. Wise and S. Yatawatta and A. Zensus},
  journal= {arXiv preprint arXiv:1411.2743},
  year   = {2015}
}

Comments

13 pages, 9 figures. Accepted for publication in Astronomy and Astrophysics