Optimization of a Household Battery Storage : The Value of Load Shift

Sweden’s energy system is facing major changes in the near future in order to reducecarbon emissions and to switch to sustainable energy sources. PV systems havebecome a sensible alternative for homeowners that want to be a part of this changeand at the same time reduce the cost of their electricity...

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Main Author: Boström, Christoffer
Format: Others
Language:English
Published: Uppsala universitet, Fasta tillståndets fysik 2016
Subjects:
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-298417
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spelling ndltd-UPSALLA1-oai-DiVA.org-uu-2984172016-07-06T05:08:59ZOptimization of a Household Battery Storage : The Value of Load ShiftengBoström, ChristofferUppsala universitet, Fasta tillståndets fysik2016Battery StorageLoad ShiftEnergyPhotovoltaicOptimizationSolar PowerSpot PricePeak PriceElectricityPower ManagementSmart ServicesSweden’s energy system is facing major changes in the near future in order to reducecarbon emissions and to switch to sustainable energy sources. PV systems havebecome a sensible alternative for homeowners that want to be a part of this changeand at the same time reduce the cost of their electricity bill. To further improve theutilization of their PV system and to handle the intermittent nature of solar power,battery storages have become an interesting system complement. This thesisinvestigates how batteries can provide smart services; load shift and peak price energyutilization to a household. This is done by developing an optimized battery algorithmmodel that can provide these smart services which is compared to a simple batteryalgorithm. The results show that the developed battery optimization model works asintended. It performs both load shift and peak price energy utilization. The economicanalysis shows that the most profitable PV system and battery configuration is a 20kW PV system with a 5 kWh battery. The system has an internal rate of return, IRR,of 2.3% which does not reach Vattenfall’s weighted average cost of capital, WACC, at7%. The results also show that the battery cost is an important factors for a system'sprofitability. A larger battery system is more expensive and the increased yield doesnot cover the increased cost. Further research is needed to implement the optimizedbattery as a functional application since the model has access to a perfect forecast andthus a method for forecasting PV production and load profile of the household arecrucial to get similar results. Student thesisinfo:eu-repo/semantics/bachelorThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-298417UPTEC ES, 1650-8300 ; 16012application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Others
sources NDLTD
topic Battery Storage
Load Shift
Energy
Photovoltaic
Optimization
Solar Power
Spot Price
Peak Price
Electricity
Power Management
Smart Services
spellingShingle Battery Storage
Load Shift
Energy
Photovoltaic
Optimization
Solar Power
Spot Price
Peak Price
Electricity
Power Management
Smart Services
Boström, Christoffer
Optimization of a Household Battery Storage : The Value of Load Shift
description Sweden’s energy system is facing major changes in the near future in order to reducecarbon emissions and to switch to sustainable energy sources. PV systems havebecome a sensible alternative for homeowners that want to be a part of this changeand at the same time reduce the cost of their electricity bill. To further improve theutilization of their PV system and to handle the intermittent nature of solar power,battery storages have become an interesting system complement. This thesisinvestigates how batteries can provide smart services; load shift and peak price energyutilization to a household. This is done by developing an optimized battery algorithmmodel that can provide these smart services which is compared to a simple batteryalgorithm. The results show that the developed battery optimization model works asintended. It performs both load shift and peak price energy utilization. The economicanalysis shows that the most profitable PV system and battery configuration is a 20kW PV system with a 5 kWh battery. The system has an internal rate of return, IRR,of 2.3% which does not reach Vattenfall’s weighted average cost of capital, WACC, at7%. The results also show that the battery cost is an important factors for a system'sprofitability. A larger battery system is more expensive and the increased yield doesnot cover the increased cost. Further research is needed to implement the optimizedbattery as a functional application since the model has access to a perfect forecast andthus a method for forecasting PV production and load profile of the household arecrucial to get similar results.
author Boström, Christoffer
author_facet Boström, Christoffer
author_sort Boström, Christoffer
title Optimization of a Household Battery Storage : The Value of Load Shift
title_short Optimization of a Household Battery Storage : The Value of Load Shift
title_full Optimization of a Household Battery Storage : The Value of Load Shift
title_fullStr Optimization of a Household Battery Storage : The Value of Load Shift
title_full_unstemmed Optimization of a Household Battery Storage : The Value of Load Shift
title_sort optimization of a household battery storage : the value of load shift
publisher Uppsala universitet, Fasta tillståndets fysik
publishDate 2016
url http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-298417
work_keys_str_mv AT bostromchristoffer optimizationofahouseholdbatterystoragethevalueofloadshift
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