Pumped-Hydro Storage Systems and Flood Risk Mitigation: A Proposed Nexus

Pumped-Hydro Storage Systems and Flood Risk Mitigation: A Proposed Nexus

Oluseye A. Adebimpe David Proverbs Victor O. Oladokun

Department of Industrial and Production Engineering, University of Ibadan, Nigeria

Faculty of Computing, Engineering and the Built Environment, Birmingham City University, Birmingham, UK

Page: 
352-362
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DOI: 
https://doi.org/10.2495/EI-V3-N4-352-362
Received: 
N/A
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Revised: 
N/A
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Accepted: 
N/A
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Available online: 
N/A
| Citation

© 2020 IIETA. This article is published by IIETA and is licensed under the CC BY 4.0 license (http://creativecommons.org/licenses/by/4.0/).

OPEN ACCESS

Abstract: 

Pumped-Hydro Storage (P-HS) technology has received some significant attention in energy storage. However, its application towards flood risk mitigation is a new dimension, which merits consideration given some of the technical characteristics and the system’s components. This study draws on a synthesis of the existing body of knowledge to postulate the potential nexus between P-HS operation and flood risk mitigation. This study represents the first attempt to explore the potential application of P-HS towards mitigating flood risk and also considers some of the other multiple benefits. The study raises a number of questions and considerations including, for example, what is the link between energy storage and flood risk mitigation?; what are the key areas that require consideration for the application of P-HS in flood risk mitigation?; how can the development of P-HS benefit flood risk mitigation? and how can this be achieved in a way that draws the interests of stakeholders and investors? A conceptual framework that seeks to establish these links alongside key areas that require consideration in line with the proposed application of P-HS in flood risk mitigation is presented. Thereafter, a discussion of the multiple benefits that P-HS could provide is presented, including improved environmental resilience as well as wider economic benefits.

Keywords: 

flood risk mitigation, energy storage, flood, pumped-hydro storage

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