Weptos Wave Energy Converters to Cover the Energy Needs of a Small Island
This paper presents the details of a study performed to investigate the feasibility of a wave energy system made up of a number of Weptos wave energy converters (WECs) and sets of batteries, to provide the full energy demands of a small island in Denmark. Two different configurations with 2 and 4 We...
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Online Access: | https://www.mdpi.com/1996-1073/12/3/423 |
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doaj-606acf652c2b42f38e1969329d5365682020-11-25T02:18:27ZengMDPI AGEnergies1996-10732019-01-0112342310.3390/en12030423en12030423Weptos Wave Energy Converters to Cover the Energy Needs of a Small IslandLucia Margheritini0Jens Peter Kofoed1Civil Engineering Department, Aalborg University, Thomas Manns Vej 23, 9220 Aalborg Ø, DemarkCivil Engineering Department, Aalborg University, Thomas Manns Vej 23, 9220 Aalborg Ø, DemarkThis paper presents the details of a study performed to investigate the feasibility of a wave energy system made up of a number of Weptos wave energy converters (WECs) and sets of batteries, to provide the full energy demands of a small island in Denmark. Two different configurations with 2 and 4 Weptos machines respectively with a combined installed power of 750 kW (and a capacity factor of 0.2) are presented. One full year simulation, based a detailed hourly analysis of the power consumption and wave energy resource assessment in the surrounding sea, is used to demonstrate that both configurations, supplemented by a 3 MWh battery bank and a backup generator, can provide the energy needs of the island. The proposed configurations are selected on the basis of a forecast optimization of price estimates for the individual elements of the solutions. The simulations show that Weptos WECs actually deliver 50% more than average consumption over the year, but due to the imbalance between consumption and production, this is not enough to cover all situations, which necessitates a backup generator that must cover 5⁻7% of consumption, in situations where there are too few waves and the battery bank is empty.https://www.mdpi.com/1996-1073/12/3/423wave energybattery storageprice estimationhourly distributionelectricity productionelectricity demand |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Lucia Margheritini Jens Peter Kofoed |
spellingShingle |
Lucia Margheritini Jens Peter Kofoed Weptos Wave Energy Converters to Cover the Energy Needs of a Small Island Energies wave energy battery storage price estimation hourly distribution electricity production electricity demand |
author_facet |
Lucia Margheritini Jens Peter Kofoed |
author_sort |
Lucia Margheritini |
title |
Weptos Wave Energy Converters to Cover the Energy Needs of a Small Island |
title_short |
Weptos Wave Energy Converters to Cover the Energy Needs of a Small Island |
title_full |
Weptos Wave Energy Converters to Cover the Energy Needs of a Small Island |
title_fullStr |
Weptos Wave Energy Converters to Cover the Energy Needs of a Small Island |
title_full_unstemmed |
Weptos Wave Energy Converters to Cover the Energy Needs of a Small Island |
title_sort |
weptos wave energy converters to cover the energy needs of a small island |
publisher |
MDPI AG |
series |
Energies |
issn |
1996-1073 |
publishDate |
2019-01-01 |
description |
This paper presents the details of a study performed to investigate the feasibility of a wave energy system made up of a number of Weptos wave energy converters (WECs) and sets of batteries, to provide the full energy demands of a small island in Denmark. Two different configurations with 2 and 4 Weptos machines respectively with a combined installed power of 750 kW (and a capacity factor of 0.2) are presented. One full year simulation, based a detailed hourly analysis of the power consumption and wave energy resource assessment in the surrounding sea, is used to demonstrate that both configurations, supplemented by a 3 MWh battery bank and a backup generator, can provide the energy needs of the island. The proposed configurations are selected on the basis of a forecast optimization of price estimates for the individual elements of the solutions. The simulations show that Weptos WECs actually deliver 50% more than average consumption over the year, but due to the imbalance between consumption and production, this is not enough to cover all situations, which necessitates a backup generator that must cover 5⁻7% of consumption, in situations where there are too few waves and the battery bank is empty. |
topic |
wave energy battery storage price estimation hourly distribution electricity production electricity demand |
url |
https://www.mdpi.com/1996-1073/12/3/423 |
work_keys_str_mv |
AT luciamargheritini weptoswaveenergyconverterstocovertheenergyneedsofasmallisland AT jenspeterkofoed weptoswaveenergyconverterstocovertheenergyneedsofasmallisland |
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