Techno-Economic Assessment of Electricity Generation From a Medium-Scale CSP-PV Hybrid Plant Using Long-Duration Storage

Authors

DOI:

https://doi.org/10.52825/solarpaces.v2i.775

Keywords:

Medium-Scale CSP, CSP-PV Hybrid, Grid Parity

Abstract

The South African electricity sector is transitioning from a single utility buyer model to an open market model due to increasing utility tariffs, the energy crisis, sustainability goals, and enabling legislation. As a result, the private sector is seeking to procure private power generation technologies, with solar photovoltaics (PV) and onshore wind being the primary choices. However, the integration of these technologies is limited due to their variability and lack of dispatchability. Concentrating solar power (CSP) tower technology combined with long-duration storage is gaining traction in high solar resource regions due to efficiency improvements and cost reductions. This paper evaluates a medium-scale CSP-PV hybrid plant’s technical and economic feasibility in South Africa, focusing on cost savings, energy security, and sustainability. The study identifies a hybrid plant suitable for large power users, with independent power producers (IPPs) developing such a plant using non-recourse project finance and energy sold to large users through long-term power purchase agreements (PPA). The first-year PPA tariffs are determined using a typical project finance model developed for local market conditions. Depending on the plant design and the off-taker’s utility tariff structure, the plant offers cost savings (and average tariffs) ranging from 9.25% (at 78 USD/MWh) to 17.58% (at 81 USD/MWh). Hybrid plants are expected to become more feasible and “bankable” with improving technology and decreasing costs in South Africa.

Downloads

Download data is not yet available.

References

IRENA, “Renewable Power Generation Costs in 2021,” https://www.irena.org/-/media/Files/IRENA/Agency/Publication/2018/Jan/IRENA_2017_Power_Costs_2018.pdf. (accessed 2022)

C.A. Pan and F. Dinter, “Combination of PV and central receiver CSP plants for base load power generation in South Africa,” Sol. Energy, vol.146, pp. 379–388, Apr, 2017, doi: https://doi.org/10.1016/j.solener.2017.02.052.

African Development Bank, “South Africa’s largest renewable energy project Redstone CSP achieves first debt draw down,“ https://www.afdb.org/en/news-and-events/press-releases/south-africas-largest-renewable-energy-project-redstone-csp-achieves-first-debt-draw-down-49098 (accessed 2022)

R.P. Merchán, M.J. Santos, A. Medina, A.C. Hernandez, “High temperature central tower plants for concentrated solar power: 2021 overview,“ Ren. and Sust. Energy Reviews, vol.155, p. 111828, Mar, 2022, doi: https://doi.org/10.1016/j.rser.2021.111828.

O. Achkari and A. El Fadar, “Latest developments on TES and CSP technologies – Energy and environmental issues, applications and research trends,“ App. Therm. Eng., vol.167, p. 114806, Aug, 2019, doi: https://doi.org/10.1016/j.applthermaleng.2019.114806.

A. Zurita, C. Mata-Torres, C. Valenzuela, C. Felbol, J.M. Cardemil, A.M. Guzmán, & R. Escobar, “Techno-Economic Evaluation of a Hybrid CSP + PV Plant Integrated with Thermal Energy Storage and a Large-Scale Battery Energy Storage System for Base Generation.” Solar Energy, vol 173, pp. 1262–77, October, 2018, doi: https://doi.org/10.1016/j.solener.2018.08.061.

M. Labbadi, K. Elyaalaoui, L. Bousselamti, M. Ouassaid, and M. Cherkaoui, “Hybridization PV-CSP: An Overview”. in Modeling, Optimisation and Intelligent Control Techniques in Renewable Energy Systems. Studies in Systems, Decision and Control, vol 434. Springer, 2022, https://doi.org/10.1007/978-3-030-98737-4_7

S. Kraemer, “China’s Big State-Owned Firms Begin New Concentrated Solar Power for 2024,“ HelioCSP, https://helioscsp.com/chinas-big-state-owned-firms-begin-new-concentrated-solar-power-for-2024/. (accessed 2022)

K. Chamberlain, “Noor III Concentrated Solar Power tower seen as “tipping point” for financing costs,“ HelioCSP, https://helioscsp.com/noor-iii-concentrated-solar-power-tower-seen-as-tipping-point-for-financing-costs/. (accessed 2022)

D.F. Duvenhage, A. Brent, W. Stafford, D. Van Den Heever, “Optimising the concentrating solar power potential in South Africa through an improved GIS analysis,“ Energies, vol.13, no.12, p. 3258, May, 2020, doi: https://doi.org/10.3390/en13123258.

Department of Energy, “Integrated resource plan 2019“, 652(42784), pp. 1–104. http://www.greengazette.co.za/pages/national-gazette-37230-of-17-january-2014-vol-583_20140117-GGN-37230-003. (accessed 2021)

J. Larmuth and A. Cuellar, “An updated review of South African CSP projects under the renewable energy independent power producer procurement programme,“ AIP Conference Proceedings, 2126, 040001, Jul, 2019, doi: https://doi.org/10.1063/1.5117581.

M. Sager, E. Davies, E. Ritchken, S. Osborne, “Concentrated solar power: A strategic industrial development opportunity for South Africa,“ WWF-SA, 2015, http://awsassets.wwf.org.za/downloads/concentrated_solar_power_report_final.pdf.

A. Fontalvo, A. Shirazi, J. Pye, “System-level simulation of molten salt small- scale CSP System-level Simulation of Molten Salt Small-scale CSP,“ AIP Conference Proceedings, 2303, 030015, Dec, 2020, doi: https://doi.org/10.1063/5.0031083.

M. A. Abaza, W. El-Maghlany, M. Hassab, F. Abulfotuh, “10 MW Concentrated Solar Power (CSP) plant operated by 100% solar energy: Sizing and techno-economic optimisation,“ Alex. Eng. Jnl., vol.59, no.1, pp. 39–47, Feb, 2020, doi: https://doi.org/10.1016/j.aej.2019.12.005.

J. Stride, and A. Attieh, “Transcript of Expert Interview with Jennifer Stride from Valanjo Stirling on Project Funding in South Africa,“ 2022.

N. Bhula, and A. Attieh, “Interview with Nandu Bhula from ACWA Power,“ 2022.

P. Kurup, S. Akar, S. Glynn, C. Augustine, P. Davenport, “Cost Update : Commercial and Advanced Heliostat Collectors Cost Update: Commercial and Advanced Heliostat Collectors,“ NREL/TP-7A, Feb, 2022, https://www.nrel.gov/docs/fy22osti/80482.pdf.

K. Kattke, “SolarDynamics Drop-C: The Drop-In, Ring-of-Power Heliostat,” Mar, 2019, https://www.energy.gov/sites/default/files/2019/04/f62/CSP%20Summit2019%20Solar%20Dynamics%20Kattke%20DropC.pdf. (accessed 2022)

B. Kistler, “A user’s manual for delsol3: A computer code for calculating the optical performance and optimal system design for solar thermal central receiver plants,“ User manual SAND86-8018, Sandia National Laboratories, 1986.

NREL, “2022 Annual Technology Baseline,” https://atb.nrel.gov/. (accessed 2022)

Chemical Engineering Online, https://www.chemengonline.com/pci-home. (accessed 2022)

U.S. Bureau of Labor Statistics, PPI Figures,https://data.bls.gov/pdq/SurveyOutputServlet. (accessed 2022)

USAID Southern Africa, https://www.usaid.gov/southern-africa-regional (accessed 2022)

A. Attieh, “Techno-economic Assessment of Electricity Generation from a 10 MW Medium-scale CSP Plant Using a Steam Turbine,” MEng Research Assignment, Stellenbosch University, March 2023.

ESKOM, “Eskom Tariffs and Charges Booklet 2022/2023,“ https://www.eskom.co.za/distribution/wp-content/uploads/2022/05/20220504_4756-ESKOM-Tariff-Booklet-2022-Final2.pdf. (accessed 2022)

NREL, System Advisor Model (version 2021.12.2), https://sam.nrel.gov/. (accessed 2022)

EPW,Climate.OneBuilding.Org, https://climate.onebuilding.org/WMO_Region_1_Africa/default.html. (accessed 2022)

Published

2024-07-24

How to Cite

McGregor, C., Pretorius, J., Attieh, A., & Hoffmann, J. (2024). Techno-Economic Assessment of Electricity Generation From a Medium-Scale CSP-PV Hybrid Plant Using Long-Duration Storage. SolarPACES Conference Proceedings, 2. https://doi.org/10.52825/solarpaces.v2i.775

Conference Proceedings Volume

Section

Analysis and Simulation of CSP and Hybridized Systems
Received 2023-09-29
Accepted 2024-06-14
Published 2024-07-24