Analysis of geomagnetically induced currents (GIC) at equatorial region over solar cycle 24 / Zatul Iffah Abd Latiff and Mohamad Huzaimy Jusoh

Geomagnetically induced currents (GIC) are one of the ground-end embodiment correlated with space environment perturbations owing to the Sun-Earth system's electromagnetic coupling. This natural hazard has contributed to the collapse of the global power grid, particularly during an extreme geom...

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Main Authors: Abd Latiff, Zatul Iffah, Jusoh, Mohamad Huzaimy
Format: Article
Language:English
Published: Universiti Teknologi MARA 2021
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Online Access:https://ir.uitm.edu.my/id/eprint/52058/1/52058.pdf
https://ir.uitm.edu.my/id/eprint/52058/
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Institution: Universiti Teknologi Mara
Language: English
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spelling my.uitm.ir.520582021-10-07T07:33:56Z https://ir.uitm.edu.my/id/eprint/52058/ Analysis of geomagnetically induced currents (GIC) at equatorial region over solar cycle 24 / Zatul Iffah Abd Latiff and Mohamad Huzaimy Jusoh Abd Latiff, Zatul Iffah Jusoh, Mohamad Huzaimy Solar system Cosmogony. Cosmology Electricity and magnetism Electric current (General) Geomagnetically induced currents (GIC) are one of the ground-end embodiment correlated with space environment perturbations owing to the Sun-Earth system's electromagnetic coupling. This natural hazard has contributed to the collapse of the global power grid, particularly during an extreme geomagnetic storm. For this study, global geomagnetic field data for equatorial regions focused on 9 extreme geomagnetic storms during solar cycle 24 were examined to explore the trend of GIC-related events centered on the temporal variations of horizontal element of geomagnetic field (dH/dt). The findings showed that there is a growing increase in the level of GIC as geomagnetic latitude (MLAT) crosses dip equator (±3°) due to Equatorial Electrojet (EEJ) Intensification. In equatorial region, a large number of extreme GIC events are also found to have occurred over day side. From the correlation study carried out between the Solar Wind (SW) parameter and the GIC activities, it can be inferred that the GIC activities at the equatorial region during solar cycle 24 indicate a strong dependency on solar wind input energy (ε Parameter) and solar wind dynamic pressure (Pdyn parameter). In contrast, the Interplanetary Magnetic Field (IMF) Bz component parameter exhibits the least dependency relationship. Universiti Teknologi MARA 2021-10 Article PeerReviewed text en https://ir.uitm.edu.my/id/eprint/52058/1/52058.pdf ID52058 Abd Latiff, Zatul Iffah and Jusoh, Mohamad Huzaimy (2021) Analysis of geomagnetically induced currents (GIC) at equatorial region over solar cycle 24 / Zatul Iffah Abd Latiff and Mohamad Huzaimy Jusoh. Journal of Electrical and Electronic Systems Research (JEESR), 19: 6. pp. 37-42. ISSN 1985-5389 https://jeesr.uitm.edu.my/
institution Universiti Teknologi Mara
building Tun Abdul Razak Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Mara
content_source UiTM Institutional Repository
url_provider http://ir.uitm.edu.my/
language English
topic Solar system
Cosmogony. Cosmology
Electricity and magnetism
Electric current (General)
spellingShingle Solar system
Cosmogony. Cosmology
Electricity and magnetism
Electric current (General)
Abd Latiff, Zatul Iffah
Jusoh, Mohamad Huzaimy
Analysis of geomagnetically induced currents (GIC) at equatorial region over solar cycle 24 / Zatul Iffah Abd Latiff and Mohamad Huzaimy Jusoh
description Geomagnetically induced currents (GIC) are one of the ground-end embodiment correlated with space environment perturbations owing to the Sun-Earth system's electromagnetic coupling. This natural hazard has contributed to the collapse of the global power grid, particularly during an extreme geomagnetic storm. For this study, global geomagnetic field data for equatorial regions focused on 9 extreme geomagnetic storms during solar cycle 24 were examined to explore the trend of GIC-related events centered on the temporal variations of horizontal element of geomagnetic field (dH/dt). The findings showed that there is a growing increase in the level of GIC as geomagnetic latitude (MLAT) crosses dip equator (±3°) due to Equatorial Electrojet (EEJ) Intensification. In equatorial region, a large number of extreme GIC events are also found to have occurred over day side. From the correlation study carried out between the Solar Wind (SW) parameter and the GIC activities, it can be inferred that the GIC activities at the equatorial region during solar cycle 24 indicate a strong dependency on solar wind input energy (ε Parameter) and solar wind dynamic pressure (Pdyn parameter). In contrast, the Interplanetary Magnetic Field (IMF) Bz component parameter exhibits the least dependency relationship.
format Article
author Abd Latiff, Zatul Iffah
Jusoh, Mohamad Huzaimy
author_facet Abd Latiff, Zatul Iffah
Jusoh, Mohamad Huzaimy
author_sort Abd Latiff, Zatul Iffah
title Analysis of geomagnetically induced currents (GIC) at equatorial region over solar cycle 24 / Zatul Iffah Abd Latiff and Mohamad Huzaimy Jusoh
title_short Analysis of geomagnetically induced currents (GIC) at equatorial region over solar cycle 24 / Zatul Iffah Abd Latiff and Mohamad Huzaimy Jusoh
title_full Analysis of geomagnetically induced currents (GIC) at equatorial region over solar cycle 24 / Zatul Iffah Abd Latiff and Mohamad Huzaimy Jusoh
title_fullStr Analysis of geomagnetically induced currents (GIC) at equatorial region over solar cycle 24 / Zatul Iffah Abd Latiff and Mohamad Huzaimy Jusoh
title_full_unstemmed Analysis of geomagnetically induced currents (GIC) at equatorial region over solar cycle 24 / Zatul Iffah Abd Latiff and Mohamad Huzaimy Jusoh
title_sort analysis of geomagnetically induced currents (gic) at equatorial region over solar cycle 24 / zatul iffah abd latiff and mohamad huzaimy jusoh
publisher Universiti Teknologi MARA
publishDate 2021
url https://ir.uitm.edu.my/id/eprint/52058/1/52058.pdf
https://ir.uitm.edu.my/id/eprint/52058/
https://jeesr.uitm.edu.my/
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