{"id":28972,"date":"2017-12-08T09:06:49","date_gmt":"2017-12-08T09:06:49","guid":{"rendered":"https:\/\/www.lse.ac.uk\/granthaminstitute\/?post_type=publication&#038;p=28972"},"modified":"2024-08-19T14:18:45","modified_gmt":"2024-08-19T13:18:45","slug":"hydropower-plans-eastern-southern-africa-increase-risk-concurrent-climate-related-electricity-supply-disruption","status":"publish","type":"publication","link":"https:\/\/www.lse.ac.uk\/granthaminstitute\/publication\/hydropower-plans-eastern-southern-africa-increase-risk-concurrent-climate-related-electricity-supply-disruption\/","title":{"rendered":"Hydropower plans in eastern and southern Africa increase risk of concurrent climate-related electricity supply disruption"},"content":{"rendered":"<!DOCTYPE html PUBLIC \"-\/\/W3C\/\/DTD HTML 4.0 Transitional\/\/EN\" \"http:\/\/www.w3.org\/TR\/REC-html40\/loose.dtd\">\n<?xml encoding=\"UTF-8\"><h3>Abstract<\/h3>\n<p>Hydropower comprises a significant and rapidly expanding proportion of electricity production in eastern and southern Africa. In both regions, hydropower is exposed to high levels of climate variability and regional climate linkages are strong, yet an understanding of spatial interdependences is lacking. Here we consider river basin configuration and define regions of coherent rainfall variability using cluster analysis to illustrate exposure to the risk of hydropower supply disruption of current (2015) and planned (2030) hydropower sites. Assuming completion of the dams planned, hydropower will become increasingly concentrated in the Nile (from 62% to 82% of total regional capacity) and Zambezi (from 73% to 85%) basins. By 2030, 70% and 59% of total hydropower capacity will be located in one cluster of rainfall variability in eastern and southern Africa, respectively, increasing the risk of concurrent climate-related electricity supply disruption in each region. Linking of nascent regional electricity sharing mechanisms could mitigate intraregional risk, although these mechanisms face considerable political and infrastructural challenges.<\/p>\n<p><strong>Declan Conway, Carole Dalin, Willem A. Landman &amp; Timothy J. Osborn. In: <i data-test=\"journal-title\">Nature Energy<\/i>&nbsp;2,&nbsp;946&ndash;953 (2017). <abbr title=\"Digital Object Identifier\">doi<\/abbr>:10.1038\/s41560-017-0037-4<\/strong><\/p>\n<p>&nbsp;<\/p>\n<p>&nbsp;<\/p>\n\n","protected":false},"excerpt":{"rendered":"<!DOCTYPE html PUBLIC \"-\/\/W3C\/\/DTD HTML 4.0 Transitional\/\/EN\" \"http:\/\/www.w3.org\/TR\/REC-html40\/loose.dtd\">\n<?xml encoding=\"UTF-8\"><p>This paper explores how hydropower dams planned for eastern and southern Africa could put electricity supply at risk for vast regions because they rely on the same rainfall patterns for electricity generation.<\/p>\n\n","protected":false},"author":12,"featured_media":0,"template":"","tags":[903,1083,731],"publication-type":[436],"topic_area":[4692],"class_list":["post-28972","publication","type-publication","status-publish","hentry","tag-energy-security","tag-hydropower","tag-water-resources","publication-type-research-articles","topic_area-adaptation-and-resilience"],"acf":{"exclude_from_sync":{"ref_value":"field_560538b0e7350","value":"0","type":false,"post_type":""},"downloads":{"ref_value":"field_52f16cc1a80f2","value":false,"type":"repeater","post_type":""},"rss_newsletter":{"ref_value":"field_54f5c2c1544d8","value":"","type":false,"post_type":""},"profile_link":{"ref_value":"field_52f164b5189e9","value":["declan-conway","carole-dalin"],"type":"relationship","post_type":"profile"},"article_link":{"ref_value":"field_52eee3c7f0586","value":"https:\/\/www.nature.com\/articles\/s41560-017-0037-4","type":false,"post_type":""},"article_link_title":{"ref_value":"field_5322399d89d42","value":"External link to publisher","type":false,"post_type":""},"spotlight":{"ref_value":"field_52f80896506d3","value":"","type":false,"post_type":""}},"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v27.3 - 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