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Main Authors: Rivers, Morgan, Gajewski, Łukasz G., Denkenberger, David
Format: Preprint
Published: 2024
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Online Access:https://arxiv.org/abs/2403.18070
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author Rivers, Morgan
Gajewski, Łukasz G.
Denkenberger, David
author_facet Rivers, Morgan
Gajewski, Łukasz G.
Denkenberger, David
contents Geomagnetic storms occurring due to sustained, high-speed solar winds are known to induce currents in power distribution networks. These geomagnetically induced currents (GICs) can cause high voltage transformers (HVT) to overheat, thus resulting in a catastrophic electricity loss event (CELE). Since significant portions of infrastructures around the world rely heavily on access to electric power, it is essential to estimate the risks associated with GICs on a global scale. We assemble multiple methodologies across various scientific disciplines to develop a framework assessing the probability of a severe geomagnetic storm causing a long-term, widespread power outage. Our model incorporates thermal models of HVT tie bar hot spots, historical geoelectric field estimates, and a global conductivity model to estimate the risk of long-term power outage for regions between -70 degrees and 80 degrees geomagnetic latitude due to transformer overheating failure. Assuming a uniform 33% HVT spare capacity, our analysis indicates that a 1 in 10,000 year storm would result in approximately 1% of the population in Europe and North America experiencing a long-term (months to years) electricity loss.
format Preprint
id arxiv_https___arxiv_org_abs_2403_18070
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Global transformer overheating from geomagnetic storms
Rivers, Morgan
Gajewski, Łukasz G.
Denkenberger, David
Physics and Society
Atmospheric and Oceanic Physics
Space Physics
Geomagnetic storms occurring due to sustained, high-speed solar winds are known to induce currents in power distribution networks. These geomagnetically induced currents (GICs) can cause high voltage transformers (HVT) to overheat, thus resulting in a catastrophic electricity loss event (CELE). Since significant portions of infrastructures around the world rely heavily on access to electric power, it is essential to estimate the risks associated with GICs on a global scale. We assemble multiple methodologies across various scientific disciplines to develop a framework assessing the probability of a severe geomagnetic storm causing a long-term, widespread power outage. Our model incorporates thermal models of HVT tie bar hot spots, historical geoelectric field estimates, and a global conductivity model to estimate the risk of long-term power outage for regions between -70 degrees and 80 degrees geomagnetic latitude due to transformer overheating failure. Assuming a uniform 33% HVT spare capacity, our analysis indicates that a 1 in 10,000 year storm would result in approximately 1% of the population in Europe and North America experiencing a long-term (months to years) electricity loss.
title Global transformer overheating from geomagnetic storms
topic Physics and Society
Atmospheric and Oceanic Physics
Space Physics
url https://arxiv.org/abs/2403.18070