TY - JOUR
T1 - Hybrid solar power plant with thermochemical energy storage
T2 - A multi-objective operational optimisation
AU - Bravo, R.
AU - Ortiz, C.
AU - Chacartegui, R.
AU - Friedrich, D.
N1 - Funding Information:
Ruben Bravo is supported by a PhD Scholarship from Becas Chile, National Commission for Scientific and Technological Research (CONICYT-Chile), Folio 72160177, 2015. The present research was supported by the Energy Technology Partnership (ETP), International Exchange Grants for Postgraduate and Early Career Researcher Exchanges (PECRE) 2018. Part of this project was developed within the Horizon 2020 Project Socratces, Grant Agreement 727348. Part of this work has been supported by the Spanish Government Agency Ministerio de Economia y Competitividad (MINECO- FEDER funds) under contract CTQ2017- 83602-C2 (-1-R and −2-R).
Publisher Copyright:
© 2019 Elsevier Ltd
PY - 2020/2/1
Y1 - 2020/2/1
N2 - Energy storage is key to decarbonising the energy sector by reducing intermittency and increasing the integration of renewable energy. Thermochemical energy storage (TCES) integrated with concentrated solar and photovoltaic power plants, has the potential to provide dispatchable and competitive energy. Here we develop a multi-objective optimisation framework to find the best operational strategy of a hybrid solar power plant with a TCES system. The model uses a typical meteorological year to optimise one-year hourly operation. The results demonstrate that the integration of a calcium-looping process as TCES in a concentrated solar power plant provides dispatchability and, when hybridised with photovoltaic, enhances its competitiveness with current electricity prices. The low mismatch between supply and demand, even when a fixed commitment is required throughout the year, together with a high overall efficiency, indicates that the integration of calcium-looping in hybrid solar power plants is an opportunity to increase the penetration of solar energy in the power sector. Through the optimisation framework presented, a seasonal energy storage analysis can be developed, although a second optimisation stage is required to improve the sizing of the main components of the system in order to further reduce the energy costs.
AB - Energy storage is key to decarbonising the energy sector by reducing intermittency and increasing the integration of renewable energy. Thermochemical energy storage (TCES) integrated with concentrated solar and photovoltaic power plants, has the potential to provide dispatchable and competitive energy. Here we develop a multi-objective optimisation framework to find the best operational strategy of a hybrid solar power plant with a TCES system. The model uses a typical meteorological year to optimise one-year hourly operation. The results demonstrate that the integration of a calcium-looping process as TCES in a concentrated solar power plant provides dispatchability and, when hybridised with photovoltaic, enhances its competitiveness with current electricity prices. The low mismatch between supply and demand, even when a fixed commitment is required throughout the year, together with a high overall efficiency, indicates that the integration of calcium-looping in hybrid solar power plants is an opportunity to increase the penetration of solar energy in the power sector. Through the optimisation framework presented, a seasonal energy storage analysis can be developed, although a second optimisation stage is required to improve the sizing of the main components of the system in order to further reduce the energy costs.
KW - Calcium-looping
KW - Concentrated solar power
KW - Hybrid energy systems
KW - Multi-objective optimisation
KW - Photovoltaic systems
KW - Thermochemical energy storage
UR - http://www.scopus.com/inward/record.url?scp=85077092324&partnerID=8YFLogxK
U2 - 10.1016/j.enconman.2019.112421
DO - 10.1016/j.enconman.2019.112421
M3 - Article
AN - SCOPUS:85077092324
SN - 0196-8904
VL - 205
JO - Energy Conversion and Management
JF - Energy Conversion and Management
M1 - 112421
ER -