Extended Cosmic Ray Decreases with Strong Anisotropy after Passage of Interplanetary Shocks

The passage of an interplanetary shock and/or interplanetary coronal mass ejection often causes a rapid decrease in the Galactic cosmic-ray (GCR) flux, known as a Forbush decrease, followed by a recovery of the flux over some days. These local effects are of short duration and strongly rigidity depe...

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Main Author: Buatthaisong N.
Other Authors: Mahidol University
Format: Article
Published: 2023
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Online Access:https://repository.li.mahidol.ac.th/handle/123456789/84491
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spelling th-mahidol.844912023-06-19T00:07:06Z Extended Cosmic Ray Decreases with Strong Anisotropy after Passage of Interplanetary Shocks Buatthaisong N. Mahidol University Earth and Planetary Sciences The passage of an interplanetary shock and/or interplanetary coronal mass ejection often causes a rapid decrease in the Galactic cosmic-ray (GCR) flux, known as a Forbush decrease, followed by a recovery of the flux over some days. These local effects are of short duration and strongly rigidity dependent, with higher-rigidity particles exhibiting much weaker effects. In contrast, we present data for two events in which the cosmic-ray flux gradually decreased for about 1 week after shock passage, then recovering over the following week, with the highest anisotropy levels observed throughout Solar Cycle 24. These extended decreases have a weak rigidity dependence and are much more prominent in observations at higher cutoff rigidity, where the initial Forbush decrease is not clearly detected and other variations are generally weak, as we demonstrate using data from the Princess Sirindhorn Neutron Monitor at Doi Inthanon, Thailand with a cutoff rigidity of about 17 GV. We propose that these extended decrease events were initiated upon the passage of an interplanetary shock that inhibited the inflow of GCRs along the interplanetary magnetic field, possibly due to magnetic mirroring at the shock. We also discuss the general behavior of GCR anisotropy as observed at this high cutoff rigidity. 2023-06-18T17:07:06Z 2023-06-18T17:07:06Z 2022-11-01 Article Astrophysical Journal Vol.939 No.2 (2022) 10.3847/1538-4357/ac96ea 15384357 0004637X 2-s2.0-85142008087 https://repository.li.mahidol.ac.th/handle/123456789/84491 SCOPUS
institution Mahidol University
building Mahidol University Library
continent Asia
country Thailand
Thailand
content_provider Mahidol University Library
collection Mahidol University Institutional Repository
topic Earth and Planetary Sciences
spellingShingle Earth and Planetary Sciences
Buatthaisong N.
Extended Cosmic Ray Decreases with Strong Anisotropy after Passage of Interplanetary Shocks
description The passage of an interplanetary shock and/or interplanetary coronal mass ejection often causes a rapid decrease in the Galactic cosmic-ray (GCR) flux, known as a Forbush decrease, followed by a recovery of the flux over some days. These local effects are of short duration and strongly rigidity dependent, with higher-rigidity particles exhibiting much weaker effects. In contrast, we present data for two events in which the cosmic-ray flux gradually decreased for about 1 week after shock passage, then recovering over the following week, with the highest anisotropy levels observed throughout Solar Cycle 24. These extended decreases have a weak rigidity dependence and are much more prominent in observations at higher cutoff rigidity, where the initial Forbush decrease is not clearly detected and other variations are generally weak, as we demonstrate using data from the Princess Sirindhorn Neutron Monitor at Doi Inthanon, Thailand with a cutoff rigidity of about 17 GV. We propose that these extended decrease events were initiated upon the passage of an interplanetary shock that inhibited the inflow of GCRs along the interplanetary magnetic field, possibly due to magnetic mirroring at the shock. We also discuss the general behavior of GCR anisotropy as observed at this high cutoff rigidity.
author2 Mahidol University
author_facet Mahidol University
Buatthaisong N.
format Article
author Buatthaisong N.
author_sort Buatthaisong N.
title Extended Cosmic Ray Decreases with Strong Anisotropy after Passage of Interplanetary Shocks
title_short Extended Cosmic Ray Decreases with Strong Anisotropy after Passage of Interplanetary Shocks
title_full Extended Cosmic Ray Decreases with Strong Anisotropy after Passage of Interplanetary Shocks
title_fullStr Extended Cosmic Ray Decreases with Strong Anisotropy after Passage of Interplanetary Shocks
title_full_unstemmed Extended Cosmic Ray Decreases with Strong Anisotropy after Passage of Interplanetary Shocks
title_sort extended cosmic ray decreases with strong anisotropy after passage of interplanetary shocks
publishDate 2023
url https://repository.li.mahidol.ac.th/handle/123456789/84491
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