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Radio Physics and Radio Astronomy | 2011

Heliograph of the UTR-2 Radio Telescope. I. General Scheme

A. A. Stanislavsky; E. P. Abranin; A. A. Konovalenko; A. A. Koval

The broadband analog-digital heliograph based on the UTR-2 radio telescope is described in detail. This device operates by employing the parallel-series principle when five equi-spaced array pattern beams which scan the given radio source (e.g. solar corona) are simultaneously shaped. As a result, the obtained image presents a frame of 5 × 8 pixels with the space resolution 25 ′ × 25 ′ at 25 MHz. Each pixel corresponds to the signal from the appropriate pattern beam. The most essential heliograph component is its phase shift module for fast sky scanning by pencilshape antenna beams. Its design, as well as its switched cable lengths calculation procedure, are presented, too. Each heliogram is formed in the actual heliograph just by using this phase shifter. Every pixel of a signal received from the corresponding antenna pattern beam is the cross-correlation dynamic spectrum (time-frequencyintensity) measured in real time with the digital spectrum processor. This new generation heliograph gives the solar corona images in the frequency range 8-32 MHz with the frequency resolution 4 kHz, time resolution to 1 ms, and dynamic range about 90 dB. The heliographic observations of radio sources and solar corona made in summer of 2010 are demonstrated as examples.


Radio Physics and Radio Astronomy | 2016

ASTROPHYSICAL STUDIES WITH SMALL LOW-FREQUENCY RADIO TELESCOPES OF NEW GENERATION

A. A. Konovalenko; S. M. Yerin; I. M. Bubnov; P. L. Tokarsky; V. V. Zakharenko; O. M. Ulyanov; M. A. Sidorchuk; S. V. Stepkin; A. O. Gridin; G. V. Kvasov; V. L. Koliadin; V. M. Melnik; V. V. Dorovskyy; M. M. Kalinichenko; G. V. Litvinenko; P. Zarka; L. Denis; J. Girard; H. O. Rucker; M. Panchenko; A. A. Stanislavsky; O. D. Khristenko; D. V. Mukha; O. M. Reznichenko; V. M. Lisachenko; V. V. Bortsov; A. I. Brazhenko; I. Y. Vasylieva; A. O. Skoryk; A. I. Shevtsova


Solar Physics | 2015

Coronal Magnetic Field Strength from Decameter Zebra-Pattern Observations: Complementarity with Band-Splitting Measurements of an Associated Type II Burst

A. A. Stanislavsky; A. A. Konovalenko; A. A. Koval; V. V. Dorovskyy; P. Zarka; Helmut O. Rucker


Radio Physics and Radio Astronomy | 2012

HELIOGRAPH OF THE UTR-2 RADIO TELESCOPE. III. OBSERVATIONS

A. A. Konovalenko; A. A. Stanislavsky; A. A. Koval; E. P. Abranin


Radio Physics and Radio Astronomy | 2012

PECULIARITY OF CONTINUUM EMISSION FROM THE UPPER SOLAR CORONA AT DECAMETER WAVELENGTHS

A. I. Brazhenko; A. A. Koval; A. A. Konovalenko; A. A. Stanislavsky; E. P. Abranin; V. V. Dorovsky; V. N. Melnik; R. V. Vashchishin; A. V. Frantsuzenko; O. V. Borysyuk


Radio Physics and Radio Astronomy | 2014

DECAMETER TYPE IV BURSTS, FIBER-BURSTS AND TYPE III BURSTS ASSOCIATED WITH GROUP OF SOLAR ACTIVE REGIONS

A. V. Antonov; V. N. Melnik; A. A. Konovalenko; V. V. Dorovskyy; H. O. Rucker; T. Zaqarashvili; A. A. Stanislavsky; A. A. Koval


Radio Physics and Radio Astronomy | 2013

Decametric type III bursts with variable sign of frequency drift rate

V. M. Melnik; A. I. Brazhenko; O. O. Konovalenko; C. Briand; B. P. Rutkevych; P. Zarka; T. Zaqarashvili; V. V. Dorovskyy; A. V. Frantsuzenko; A. A. Stanislavsky


Radio Physics and Radio Astronomy | 2011

HELIOGRAPH OF THE UTR-2 RADIO TELESCOPE. II. DESIGN FEATURES

E. P. Abranin; A. A. Stanislavsky; A. A. Koval; A. A. Konovalenko


Radio Physics and Radio Astronomy | 2014

RADIO SPECTRUM EVOLUTION OF THE SUPERNOVA REMNANT CASSIOPEIA A AT FREQUENCIES 35–65 MHZ

I. N. Bubnov; A. A. Konovalenko; A. A. Stanislavsky; V. P. Bovkoon; I. N. Zhouck; D. V. Mukha


Radio Physics and Radio Astronomy | 2013

Properties of the complex type II burst with rich herringbone structure within 3–33 MHz

V. V. Dorovskyy; V. M. Melnik; O. O. Konovalenko; A. I. Brazhenko; M. Panchenko; H. O. Rucker; Stefaan Poedts; A. A. Stanislavsky; V. A. Mykhaylov

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A. A. Konovalenko

National Academy of Sciences of Ukraine

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A. I. Brazhenko

National Academy of Sciences of Ukraine

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A. A. Koval

National Academy of Sciences of Ukraine

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E. P. Abranin

National Academy of Sciences of Ukraine

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A. V. Frantsuzenko

National Academy of Sciences of Ukraine

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V. N. Melnik

National Academy of Sciences of Ukraine

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D. V. Mukha

National Academy of Sciences of Ukraine

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V. V. Dorovsky

National Academy of Sciences of Ukraine

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P. Zarka

Centre national de la recherche scientifique

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A. I. Shevtsova

National Academy of Sciences of Ukraine

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