Optimal Energy Storage Sizing With Battery Augmentation for Renewable-Plus-Storage Power Plants

The renewable-plus-storage power plant is becoming economically viable for power producers given the maturing technology and continued cost reduction. However, as batteries and power conversion systems remain costly, the power plant profitability depends on the capacity determination of the battery...

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Main Authors: Hunyoung Shin, Jin Hur
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9223659/
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spelling doaj-22595abb655f47c197ace904156c67c22021-03-30T04:43:01ZengIEEEIEEE Access2169-35362020-01-01818773018774310.1109/ACCESS.2020.30311979223659Optimal Energy Storage Sizing With Battery Augmentation for Renewable-Plus-Storage Power PlantsHunyoung Shin0https://orcid.org/0000-0003-0200-4008Jin Hur1https://orcid.org/0000-0003-2239-3602Department of Electrical Engineering, Sangmyung University, Seoul, South KoreaDepartment of Climate and Energy Systems Engineering, College of Engineering, Ewha Womans University, Seoul, South KoreaThe renewable-plus-storage power plant is becoming economically viable for power producers given the maturing technology and continued cost reduction. However, as batteries and power conversion systems remain costly, the power plant profitability depends on the capacity determination of the battery energy storage system (BESS). This study explored an approach for optimal capacity determination of a BESS combined with renewable energy considering the complex degradation of lithium-ion batteries. The proposed sizing algorithm iteratively evaluates the effect of BESS operation on battery degradation and estimates the cash flows of the power plant. In addition, we studied battery augmentation that adds the storage capacity in the base system to sustain the BESS capacity throughout the project planning horizon. Using data from South Korea, we showed that both the optimal storage capacity and project profitability are higher when the BESS is combined with solar generation than when combined with wind generation. Moreover, simulation results demonstrated that the proposed battery augmentation scheme improves the project profitability by deferring the upfront cost of batteries and increasing the total revenue. The proposed approach can provide a comprehensive framework for the parties involved in a BESS project to accurately calculate the BESS sizes and maximize the project profitability.https://ieeexplore.ieee.org/document/9223659/Energy storage systemenergy storage sizingrenewable energylithium-ion battery degradationbattery augmentation
collection DOAJ
language English
format Article
sources DOAJ
author Hunyoung Shin
Jin Hur
spellingShingle Hunyoung Shin
Jin Hur
Optimal Energy Storage Sizing With Battery Augmentation for Renewable-Plus-Storage Power Plants
IEEE Access
Energy storage system
energy storage sizing
renewable energy
lithium-ion battery degradation
battery augmentation
author_facet Hunyoung Shin
Jin Hur
author_sort Hunyoung Shin
title Optimal Energy Storage Sizing With Battery Augmentation for Renewable-Plus-Storage Power Plants
title_short Optimal Energy Storage Sizing With Battery Augmentation for Renewable-Plus-Storage Power Plants
title_full Optimal Energy Storage Sizing With Battery Augmentation for Renewable-Plus-Storage Power Plants
title_fullStr Optimal Energy Storage Sizing With Battery Augmentation for Renewable-Plus-Storage Power Plants
title_full_unstemmed Optimal Energy Storage Sizing With Battery Augmentation for Renewable-Plus-Storage Power Plants
title_sort optimal energy storage sizing with battery augmentation for renewable-plus-storage power plants
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2020-01-01
description The renewable-plus-storage power plant is becoming economically viable for power producers given the maturing technology and continued cost reduction. However, as batteries and power conversion systems remain costly, the power plant profitability depends on the capacity determination of the battery energy storage system (BESS). This study explored an approach for optimal capacity determination of a BESS combined with renewable energy considering the complex degradation of lithium-ion batteries. The proposed sizing algorithm iteratively evaluates the effect of BESS operation on battery degradation and estimates the cash flows of the power plant. In addition, we studied battery augmentation that adds the storage capacity in the base system to sustain the BESS capacity throughout the project planning horizon. Using data from South Korea, we showed that both the optimal storage capacity and project profitability are higher when the BESS is combined with solar generation than when combined with wind generation. Moreover, simulation results demonstrated that the proposed battery augmentation scheme improves the project profitability by deferring the upfront cost of batteries and increasing the total revenue. The proposed approach can provide a comprehensive framework for the parties involved in a BESS project to accurately calculate the BESS sizes and maximize the project profitability.
topic Energy storage system
energy storage sizing
renewable energy
lithium-ion battery degradation
battery augmentation
url https://ieeexplore.ieee.org/document/9223659/
work_keys_str_mv AT hunyoungshin optimalenergystoragesizingwithbatteryaugmentationforrenewableplusstoragepowerplants
AT jinhur optimalenergystoragesizingwithbatteryaugmentationforrenewableplusstoragepowerplants
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