{"id":{"repo_id":"plymouth","oai_identifier":"oai:pearl.plymouth.ac.uk:pbs-theses-1301"},"canonical_url":"https://search.dev.ndltd.org/etd/plymouth/oai:pearl.plymouth.ac.uk:pbs-theses-1301","repository":{"repo_id":"plymouth","name":"University of Plymouth","base_url":"https://pearl.plymouth.ac.uk/do/oai"},"display":{"title":"Reactive power potential: A contribution of hydropower for the Energy Transition","abstract":"The growing challenges of climate change and the urgent need to reduce carbon <br/>emissions make Germany’s Energy Transition a crucial step in addressing these global <br/>issues. Climate change, driven largely by rising CO₂ levels, demands a swift shift to <br/>renewable energy to minimise its impact on the environment and society. At the same <br/>time, the gradual phase-out of conventional power plants presents significant <br/>challenges for the electricity grid, especially in terms of expanding the network and <br/>ensuring its reliability. <br/>This study explores the critical role of hydropower plants in stabilizing the energy <br/>system. In addition to generating renewable energy, hydropower plants are highly <br/>adaptable and can play a vital role in ensuring system security by providing reactive <br/>power. The research identifies a theoretical potential of 409 MVar inductive and <br/>252 MVar capacitive reactive power in Bavaria’s medium-voltage grids. This highlights <br/>the importance of hydropower in addressing the increasing demand for grid stability as <br/>conventional power plants are retired. <br/>To fully utilise this potential, the study emphasises the need for technical upgrades and <br/>changes in regulations. It focuses on challenges related to voltage stability and the <br/>control of reactive power, where hydropower’s stability and controllability offer clear <br/>advantages. As renewable energy sources like solar and wind become more <br/>prominent, their intermittent nature makes the need for reliable grid stabilisation even <br/>more pressing. <br/>The research also examines the economic and operational aspects of integrating <br/>hydropower into reactive power management. It calls for policies and incentives to <br/>encourage HPP operators to enhance their capabilities. Modernising equipment and <br/>upgrading grid infrastructure are identified as essential steps to align hydropower’s <br/>potential with the demands of a renewable energy-focused grid. By balancing technical <br/>and economic factors, hydropower can become a cornerstone of a sustainable and <br/>decentralised energy system. <br/>The findings underscore the importance of collaboration among policymakers, grid <br/>operators, and energy producers. Creating a supportive environment for hydropower’s <br/>expanded role is essential to achieving the goals of the Energy Transition. This study <br/>not only addresses the immediate challenges but also offers solutions that can be <br/>adapted to other regions facing similar energy transformation needs. <br/>In conclusion, integrating hydropower into reactive power management is a <br/>transformative opportunity to enhance the resilience and efficiency of Germany’s <br/>electricity grid. The research highlights the importance of aligning technical, regulatory, <br/>and economic strategies to fully realize hydropower’s potential. This alignment is key <br/>to ensuring the success of the Energy Transition, maintaining grid stability, and <br/>reinforcing Germany’s leadership in renewable energy development.","abstract_html":"The growing challenges of climate change and the urgent need to reduce carbon &lt;br/&gt;emissions make Germany’s Energy Transition a crucial step in addressing these global &lt;br/&gt;issues. Climate change, driven largely by rising CO₂ levels, demands a swift shift to &lt;br/&gt;renewable energy to minimise its impact on the environment and society. At the same &lt;br/&gt;time, the gradual phase-out of conventional power plants presents significant &lt;br/&gt;challenges for the electricity grid, especially in terms of expanding the network and &lt;br/&gt;ensuring its reliability. &lt;br/&gt;This study explores the critical role of hydropower plants in stabilizing the energy &lt;br/&gt;system. In addition to generating renewable energy, hydropower plants are highly &lt;br/&gt;adaptable and can play a vital role in ensuring system security by providing reactive &lt;br/&gt;power. The research identifies a theoretical potential of 409 MVar inductive and &lt;br/&gt;252 MVar capacitive reactive power in Bavaria’s medium-voltage grids. This highlights &lt;br/&gt;the importance of hydropower in addressing the increasing demand for grid stability as &lt;br/&gt;conventional power plants are retired. &lt;br/&gt;To fully utilise this potential, the study emphasises the need for technical upgrades and &lt;br/&gt;changes in regulations. It focuses on challenges related to voltage stability and the &lt;br/&gt;control of reactive power, where hydropower’s stability and controllability offer clear &lt;br/&gt;advantages. As renewable energy sources like solar and wind become more &lt;br/&gt;prominent, their intermittent nature makes the need for reliable grid stabilisation even &lt;br/&gt;more pressing. &lt;br/&gt;The research also examines the economic and operational aspects of integrating &lt;br/&gt;hydropower into reactive power management. It calls for policies and incentives to &lt;br/&gt;encourage HPP operators to enhance their capabilities. Modernising equipment and &lt;br/&gt;upgrading grid infrastructure are identified as essential steps to align hydropower’s &lt;br/&gt;potential with the demands of a renewable energy-focused grid. By balancing technical &lt;br/&gt;and economic factors, hydropower can become a cornerstone of a sustainable and &lt;br/&gt;decentralised energy system. &lt;br/&gt;The findings underscore the importance of collaboration among policymakers, grid &lt;br/&gt;operators, and energy producers. Creating a supportive environment for hydropower’s &lt;br/&gt;expanded role is essential to achieving the goals of the Energy Transition. This study &lt;br/&gt;not only addresses the immediate challenges but also offers solutions that can be &lt;br/&gt;adapted to other regions facing similar energy transformation needs. &lt;br/&gt;In conclusion, integrating hydropower into reactive power management is a &lt;br/&gt;transformative opportunity to enhance the resilience and efficiency of Germany’s &lt;br/&gt;electricity grid. The research highlights the importance of aligning technical, regulatory, &lt;br/&gt;and economic strategies to fully realize hydropower’s potential. This alignment is key &lt;br/&gt;to ensuring the success of the Energy Transition, maintaining grid stability, and &lt;br/&gt;reinforcing Germany’s leadership in renewable energy development.","abstract_has_math":false,"creators":["Bohlinger, Michael"],"institution":null,"degree_name":null,"degree_level":null,"degree_discipline":null,"degree_department":null,"school":null,"contributors":["Juergen Spitznagel, Lijun Tang"],"advisors":[],"committee_chairs":[],"committee_members":[],"year":2025,"date_issued":"2025-01-01T08:00:00Z","date_published":"2025-01-01T08:00:00Z","updated_at":"2026-07-24T03:49:42Z","subjects":[],"languages":["eng"],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"https://pearl.plymouth.ac.uk/pbs-theses/302","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor","label":"Contributor","values":["Juergen Spitznagel, Lijun Tang"]},{"key":"dc:creator","label":"Author","values":["Bohlinger, Michael"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date.available","label":"Dc Date Available","values":["2025-07-04T07:00:00Z"]},{"key":"dc:date.issued","label":"Date","values":["2025-01-01T08:00:00Z"]},{"key":"dc:type","label":"Dc Type","values":["Thesis"]}]},{"id":"language_rights","label":"Language and Rights","entries":[{"key":"dc:language","label":"Dc Language","values":["eng"]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier","label":"Identifier","values":["https://pearl.plymouth.ac.uk/pbs-theses/302"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description","label":"Description","values":["#N/A!"]},{"key":"dc:description.abstract","label":"Abstract","values":["The growing challenges of climate change and the urgent need to reduce carbon <br/>emissions make Germany’s Energy Transition a crucial step in addressing these global <br/>issues. Climate change, driven largely by rising CO₂ levels, demands a swift shift to <br/>renewable energy to minimise its impact on the environment and society. At the same <br/>time, the gradual phase-out of conventional power plants presents significant <br/>challenges for the electricity grid, especially in terms of expanding the network and <br/>ensuring its reliability. <br/>This study explores the critical role of hydropower plants in stabilizing the energy <br/>system. In addition to generating renewable energy, hydropower plants are highly <br/>adaptable and can play a vital role in ensuring system security by providing reactive <br/>power. The research identifies a theoretical potential of 409 MVar inductive and <br/>252 MVar capacitive reactive power in Bavaria’s medium-voltage grids. This highlights <br/>the importance of hydropower in addressing the increasing demand for grid stability as <br/>conventional power plants are retired. <br/>To fully utilise this potential, the study emphasises the need for technical upgrades and <br/>changes in regulations. It focuses on challenges related to voltage stability and the <br/>control of reactive power, where hydropower’s stability and controllability offer clear <br/>advantages. As renewable energy sources like solar and wind become more <br/>prominent, their intermittent nature makes the need for reliable grid stabilisation even <br/>more pressing. <br/>The research also examines the economic and operational aspects of integrating <br/>hydropower into reactive power management. It calls for policies and incentives to <br/>encourage HPP operators to enhance their capabilities. Modernising equipment and <br/>upgrading grid infrastructure are identified as essential steps to align hydropower’s <br/>potential with the demands of a renewable energy-focused grid. By balancing technical <br/>and economic factors, hydropower can become a cornerstone of a sustainable and <br/>decentralised energy system. <br/>The findings underscore the importance of collaboration among policymakers, grid <br/>operators, and energy producers. Creating a supportive environment for hydropower’s <br/>expanded role is essential to achieving the goals of the Energy Transition. This study <br/>not only addresses the immediate challenges but also offers solutions that can be <br/>adapted to other regions facing similar energy transformation needs. <br/>In conclusion, integrating hydropower into reactive power management is a <br/>transformative opportunity to enhance the resilience and efficiency of Germany’s <br/>electricity grid. The research highlights the importance of aligning technical, regulatory, <br/>and economic strategies to fully realize hydropower’s potential. This alignment is key <br/>to ensuring the success of the Energy Transition, maintaining grid stability, and <br/>reinforcing Germany’s leadership in renewable energy development."]},{"key":"dc:title","label":"Title","values":["Reactive power potential: A contribution of hydropower for the Energy Transition"]}]}],"canonical_facts":{"dc:contributor":["Juergen Spitznagel, Lijun Tang"],"dc:creator":["Bohlinger, Michael"],"dc:date.available":["2025-07-04T07:00:00Z"],"dc:date.issued":["2025-01-01T08:00:00Z"],"dc:description":["#N/A!"],"dc:description.abstract":["The growing challenges of climate change and the urgent need to reduce carbon <br/>emissions make Germany’s Energy Transition a crucial step in addressing these global <br/>issues. Climate change, driven largely by rising CO₂ levels, demands a swift shift to <br/>renewable energy to minimise its impact on the environment and society. At the same <br/>time, the gradual phase-out of conventional power plants presents significant <br/>challenges for the electricity grid, especially in terms of expanding the network and <br/>ensuring its reliability. <br/>This study explores the critical role of hydropower plants in stabilizing the energy <br/>system. In addition to generating renewable energy, hydropower plants are highly <br/>adaptable and can play a vital role in ensuring system security by providing reactive <br/>power. The research identifies a theoretical potential of 409 MVar inductive and <br/>252 MVar capacitive reactive power in Bavaria’s medium-voltage grids. This highlights <br/>the importance of hydropower in addressing the increasing demand for grid stability as <br/>conventional power plants are retired. <br/>To fully utilise this potential, the study emphasises the need for technical upgrades and <br/>changes in regulations. It focuses on challenges related to voltage stability and the <br/>control of reactive power, where hydropower’s stability and controllability offer clear <br/>advantages. As renewable energy sources like solar and wind become more <br/>prominent, their intermittent nature makes the need for reliable grid stabilisation even <br/>more pressing. <br/>The research also examines the economic and operational aspects of integrating <br/>hydropower into reactive power management. It calls for policies and incentives to <br/>encourage HPP operators to enhance their capabilities. Modernising equipment and <br/>upgrading grid infrastructure are identified as essential steps to align hydropower’s <br/>potential with the demands of a renewable energy-focused grid. By balancing technical <br/>and economic factors, hydropower can become a cornerstone of a sustainable and <br/>decentralised energy system. <br/>The findings underscore the importance of collaboration among policymakers, grid <br/>operators, and energy producers. Creating a supportive environment for hydropower’s <br/>expanded role is essential to achieving the goals of the Energy Transition. This study <br/>not only addresses the immediate challenges but also offers solutions that can be <br/>adapted to other regions facing similar energy transformation needs. <br/>In conclusion, integrating hydropower into reactive power management is a <br/>transformative opportunity to enhance the resilience and efficiency of Germany’s <br/>electricity grid. The research highlights the importance of aligning technical, regulatory, <br/>and economic strategies to fully realize hydropower’s potential. This alignment is key <br/>to ensuring the success of the Energy Transition, maintaining grid stability, and <br/>reinforcing Germany’s leadership in renewable energy development."],"dc:identifier":["https://pearl.plymouth.ac.uk/pbs-theses/302"],"dc:language":["eng"],"dc:title":["Reactive power potential: A contribution of hydropower for the Energy Transition"],"dc:type":["Thesis"]},"updated_at":"2026-07-24T03:49:42Z"}