LOFAR is the LOw-Frequency Radio interferometer ARray located at midlatitude (52°53'N). Here we present results on ionospheric structures derived from 29 LOFAR nighttime observations during the winters of 2012/2013 and 2013/2014. We show that LOFAR is able to determine differential ionospheric total electron content values with an accuracy better than 0.001 total electron content unit = 1016m-2 over distances ranging between 1 and 100 km. For all observations the power law behavior of the phase structure function is confirmed over a long range of baseline lengths, between 1 and 80 km, with a slope that is, in general, larger than the 5/3 expected for pure Kolmogorov turbulence. The measured average slope is 1.89 with a one standard deviatio...
© ESO 2021. This is the accepted manuscript version of an article which has been published in final ...
Contamination due to foregrounds (Galactic and extragalactic), calibration errors, and ionospheric e...
The Earth’s ionosphere is a highly variable medium on a wide range of spatio-temporal scales. The re...
LOFAR is the LOw-Frequency Radio interferometer ARray located at midlatitude (52°53'N). Here we pres...
LOFAR is the LOw-Frequency Radio interferometer ARray located at midlatitude (52°53′N). Here we pres...
To obtain high quality images with the Lofar low frequency radio telescope, accurate ionospheric cha...
The Low Frequency Array (LOFAR) is designed to observe the early universe at radio wavelengths. When...
Contamination due to foregrounds (Galactic and extragalactic), calibration errors, and ionospheric e...
This paper presents the results from one of the first observations of ionospheric scintillation take...
Observations made using the LOw-Frequency ARray (LOFAR) between 10:15 and 11:48 UT on the 15th of Se...
Context. The ionosphere is the main driver of a series of systematic effects that limit our ability ...
The european radio telescope LOFAR is in its commissioning phase. It is a huge interferometer operat...
© ESO 2021. This is the accepted manuscript version of an article which has been published in final ...
Contamination due to foregrounds (Galactic and extragalactic), calibration errors, and ionospheric e...
The Earth’s ionosphere is a highly variable medium on a wide range of spatio-temporal scales. The re...
LOFAR is the LOw-Frequency Radio interferometer ARray located at midlatitude (52°53'N). Here we pres...
LOFAR is the LOw-Frequency Radio interferometer ARray located at midlatitude (52°53′N). Here we pres...
To obtain high quality images with the Lofar low frequency radio telescope, accurate ionospheric cha...
The Low Frequency Array (LOFAR) is designed to observe the early universe at radio wavelengths. When...
Contamination due to foregrounds (Galactic and extragalactic), calibration errors, and ionospheric e...
This paper presents the results from one of the first observations of ionospheric scintillation take...
Observations made using the LOw-Frequency ARray (LOFAR) between 10:15 and 11:48 UT on the 15th of Se...
Context. The ionosphere is the main driver of a series of systematic effects that limit our ability ...
The european radio telescope LOFAR is in its commissioning phase. It is a huge interferometer operat...
© ESO 2021. This is the accepted manuscript version of an article which has been published in final ...
Contamination due to foregrounds (Galactic and extragalactic), calibration errors, and ionospheric e...
The Earth’s ionosphere is a highly variable medium on a wide range of spatio-temporal scales. The re...