English
Related papers

Related papers: Cut-off features in interplanetary solar radio typ…

200 papers

The Space Weather effects in the near-Earth environment as well as in atmospheres of other terrestrial planets arise by corpuscular radiation from the Sun, known as the solar wind. The solar magnetic fields govern the solar corona…

Solar and Stellar Astrophysics · Physics 2022-01-05 A. Koval , M. Karlicky , A. Stanislavsky , B. Wang , M. Barta , R. Gorgutsa

This work reports a peculiar and interesting train of microwave type III pair bursts in the impulsive rising phase of a solar flare on 2011 September 26. The observations include radio spectrometers at frequency of 0.80 - 2.00 GHz, hard…

Solar and Stellar Astrophysics · Physics 2016-09-28 Baolin Tan , Marian Karlicky , Hana Meszarosova , Larisa Kashapova , Jing Huang , Yan Yan , Eduard P. Kontar

We present \emph{in situ} observations of the source regions of interplanetary (IP) type II radio bursts, using data from the Wind spacecraft during the period 1996-2002. We show the results of this survey as well as in-depth analysis of…

Space Physics · Physics 2009-11-13 M. Pulupa , S. D. Bale

It is believed that type II radio bursts are generated by shock waves. In order to understand the generation conditions of type II radio bursts, in this paper, we analyze the physical parameters of a shock front. The type II radio burst we…

Solar and Stellar Astrophysics · Physics 2016-10-19 W. Su , X. Cheng , M. D. Ding , P. F. Chen , Z. J. Ning , H. S. Ji

We use multi-spacecraft observations of invididual type III radio bursts in order to calculate the directivity of the radio emission, to be compared to the results of ray-tracing simulations of the radio-wave propagation and probe the…

Solar and Stellar Astrophysics · Physics 2021-12-15 S. Musset , M. Maksimovic , E. Kontar , V. Krupar , N. Chrysaphi , X. Bonnin , A. Vecchio , B. Cecconi , A. Zaslavsky , K. Issautier , S. D. Bale , M. Pulupa

Type III solar radio bursts are driven by non-thermal electron beams travelling along heliospheric magnetic fields, with the radio emission frequency drift-rate determined by the beam speed and the plasma density profile. Analysing beam…

Solar and Stellar Astrophysics · Physics 2026-01-28 Daniel L. Clarkson , Eduard P. Kontar

We present a case study of the 13 July 2004 solar event, in which disturbances caused by eruption of a filament from an active region embraced a quarter of the visible solar surface. Remarkable are absorption phenomena observed in the…

Astrophysics · Physics 2008-11-07 V. V. Grechnev , A. M. Uralov , V. A. Slemzin , I. M. Chertok , I. V. Kuzmenko , K. Shibasaki

We report on the results of observations of a type IV burst by URAN-2 (Ukrainian Radio interferometer of Academy Scienses) in the frequency range 22 - 33 MHz, which is associated with the CME (coronal mass ejection) initiated by a…

A decay of Type III burst into two Type III bursts was registered during solar observations by GURT and URAN-2 radio telescopes on April 18, 2017. Such phenomenon was observed for the first time. Newborn Type III bursts have drift rates…

Context. Solar radio bursts originate mainly from high energy electrons accelerated in solar eruptions like solar flares, jets, and coronal mass ejections. A subcategory of solar radio bursts with short time duration may be used as a proxy…

Collisionless shocks are one of the most powerful particle accelerators in the Universe. In the heliosphere, type II solar radio bursts are signatures of electrons accelerated by collisionless shocks launched at the Sun. Spectral…

Solar and Stellar Astrophysics · Physics 2025-02-25 D. E. Morosan , I. C. Jebaraj , P. Zhang , P. Zucca , B. Dabrowski , P. T. Gallagher , A. Krankowski , C. Vocks , R. Vainio

Context. Coronal mass ejections (CMEs) are large eruptions of magnetised plasma from the Sun that are often accompanied by solar radio bursts produced by accelerated electrons. Aims. A powerful source for accelerating electron beams are…

Solar and Stellar Astrophysics · Physics 2020-10-14 D. E. Morosan , E. Palmerio , J. E. Räsänen , E. K. J. Kilpua , J. Magdalenić , B. J. Lynch , A. Kumari , J. Pomoell , M. Palmroth

We investigate coronal transients associated with a GOES M6.7 class flare and a coronal mass ejection (CME) on 13 July 2004. During the rising phase of the flare, a filament eruption, loop expansion, a Moreton wave, and an ejecta were…

Astrophysics · Physics 2008-10-03 S. Pohjolainen , K. Hori , T. Sakurai

Context. To investigate the source of a type III radio burst storm during encounter 2 of NASA's Parker Solar Probe (PSP) mission. Aims. It was observed that in encounter 2 of NASA's Parker Solar Probe mission there was a large amount of…

Solar and Stellar Astrophysics · Physics 2021-06-02 L. Harra , D. H. Brooks , S. D. Bale , C. H. Mandrini , K. Barczynski , R. Sharma , S. T. Badman , S. Vargas Dominguez , M. Pulupa

An X3.4 solar flare and a fast halo coronal mass ejection (CME) occurred on 2006 December 13, accompanied by a high flux of energetic particles recorded both in near-Earth space and at ground level. Our purpose is to provide evidence of…

Solar and Stellar Astrophysics · Physics 2013-05-27 C. Li , Y. Dai , J. -C. Vial , C. J. Owen , S. A. Matthews , Y. H. Tang , C. Fang , A. N. Fazakerley

Spike-type III burst pairs represent a distinct class of solar radio emissions in which clusters of spike-like bursts appear atop the highfrequency onset of type III bursts. Using high time-frequency resolution data from the Chashan…

Solar and Stellar Astrophysics · Physics 2026-05-21 Shuwang Chang , Chuanyang , Bing Wang , Guang Lu , Zhao Wu , Fabao Yan , Hao Ning , Yao Chen

Type III radio bursts are the result of plasma emission from mildly relativistic electron beams propagating from the low solar corona into the heliosphere where they can eventually be detected in situ if they align with the location of a…

The radial speed of a coronal mass ejection (CME) determines the shock-driving capability of a CME as indicated by the presence of a type II radio burst. Here we report on the April 18, 2014 CME that was associated with a type II radio…

D-H type II radio bursts are widely thought to be caused by the coronal mass ejections (CMEs). However, it is still unclear where the exact source of the type IIs on the shock surface is. We identify the source regions of the…

Solar and Stellar Astrophysics · Physics 2015-06-11 Chenglong Shen , Chijian Liao , Yuming Wang , Pinzhong Ye , Shui Wang

In this paper, we present for the first time a comprehensive statistical study between type II radio bursts from the metric (m) to the dekameric-hectometric (DH) domain and their associated solar and space weather (SW) phenomena, namely,…

Solar and Stellar Astrophysics · Physics 2025-07-03 Pooja Devi , Rositsa Miteva , Ramesh Chandra , Kostadinka Koleva , Bendict Lawrance
‹ Prev 1 4 5 6 7 8 10 Next ›