Optimal Design Model for a Residential PV Storage System. An Application to the Spanish Case

Self-consumption of photovoltaic energy is being promoted as an effective way for energy consumption in residential households. The European Directive 944/2019 promotes the use of green energy and battery energy storage systems (BESS) for self-consumption and, in Spain, the 244/2019 Royal Decree of...

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Main Authors: Juan Antonio Ballesteros-Gallardo, Angel Arcos-Vargas, Fernando Núñez
Format: Article
Language:English
Published: MDPI AG 2021-01-01
Series:Sustainability
Subjects:
Online Access:https://www.mdpi.com/2071-1050/13/2/575
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spelling doaj-bbf370b495154c30947fb0181e4b961a2021-01-10T00:00:54ZengMDPI AGSustainability2071-10502021-01-011357557510.3390/su13020575Optimal Design Model for a Residential PV Storage System. An Application to the Spanish CaseJuan Antonio Ballesteros-Gallardo0Angel Arcos-Vargas1Fernando Núñez2Industrial Engineering and Management Science, University of Seville, 41092 Seville, SpainIndustrial Engineering and Management Science, University of Seville, 41092 Seville, SpainIndustrial Engineering and Management Science, University of Seville, 41092 Seville, SpainSelf-consumption of photovoltaic energy is being promoted as an effective way for energy consumption in residential households. The European Directive 944/2019 promotes the use of green energy and battery energy storage systems (BESS) for self-consumption and, in Spain, the 244/2019 Royal Decree of the Spanish electrical regulatory framework allows the self-consumption of energy with a photovoltaic (PV) facility for residential use, as well as the injection of the surplus energy into the grid for which compensation will be received. At the same time, new developments in PV and BESS technologies reduce the costs of facilities, a fact that can increase the profitability of self-consumption through PV energy. This study evaluates the profitability of a household PV facility with BESS using a model based on real market prices, hourly data from user smart meters, and their own location; especially, the model gives the best configuration of PV panels power and BESS capacity. The financial indicators taken as reference for the results and conclusions are the Net Present Value (NPV), Internal Rate of Return (IRR), and Investment Return (IR). Our method examines also the effect of the BESS and PV panel costs on the profitability of the facility. Unlike other studies, our model is based on actual (not simulated) demand and price data, and it can be easily extended to other locations and market prices.https://www.mdpi.com/2071-1050/13/2/575renewable energyresidential PV facilitiesstorage systemsself-consumptionfinancial analysis
collection DOAJ
language English
format Article
sources DOAJ
author Juan Antonio Ballesteros-Gallardo
Angel Arcos-Vargas
Fernando Núñez
spellingShingle Juan Antonio Ballesteros-Gallardo
Angel Arcos-Vargas
Fernando Núñez
Optimal Design Model for a Residential PV Storage System. An Application to the Spanish Case
Sustainability
renewable energy
residential PV facilities
storage systems
self-consumption
financial analysis
author_facet Juan Antonio Ballesteros-Gallardo
Angel Arcos-Vargas
Fernando Núñez
author_sort Juan Antonio Ballesteros-Gallardo
title Optimal Design Model for a Residential PV Storage System. An Application to the Spanish Case
title_short Optimal Design Model for a Residential PV Storage System. An Application to the Spanish Case
title_full Optimal Design Model for a Residential PV Storage System. An Application to the Spanish Case
title_fullStr Optimal Design Model for a Residential PV Storage System. An Application to the Spanish Case
title_full_unstemmed Optimal Design Model for a Residential PV Storage System. An Application to the Spanish Case
title_sort optimal design model for a residential pv storage system. an application to the spanish case
publisher MDPI AG
series Sustainability
issn 2071-1050
publishDate 2021-01-01
description Self-consumption of photovoltaic energy is being promoted as an effective way for energy consumption in residential households. The European Directive 944/2019 promotes the use of green energy and battery energy storage systems (BESS) for self-consumption and, in Spain, the 244/2019 Royal Decree of the Spanish electrical regulatory framework allows the self-consumption of energy with a photovoltaic (PV) facility for residential use, as well as the injection of the surplus energy into the grid for which compensation will be received. At the same time, new developments in PV and BESS technologies reduce the costs of facilities, a fact that can increase the profitability of self-consumption through PV energy. This study evaluates the profitability of a household PV facility with BESS using a model based on real market prices, hourly data from user smart meters, and their own location; especially, the model gives the best configuration of PV panels power and BESS capacity. The financial indicators taken as reference for the results and conclusions are the Net Present Value (NPV), Internal Rate of Return (IRR), and Investment Return (IR). Our method examines also the effect of the BESS and PV panel costs on the profitability of the facility. Unlike other studies, our model is based on actual (not simulated) demand and price data, and it can be easily extended to other locations and market prices.
topic renewable energy
residential PV facilities
storage systems
self-consumption
financial analysis
url https://www.mdpi.com/2071-1050/13/2/575
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