30th International Conference on Concentrating Solar Power and Chemical Energy Systems - SolarPACES 2024, Roma (Italia). 08-11 octubre 2024
Resumen:
Supercritical CO2 power cycles emerge as the next-generation standard for Concentrated Solar Power technology mainly due to their high efficiency and reduced footprint. This study investigates the role of the S-CO2 turbomachinery in an Integrated Solar Combined Cycle, and performs the design and optimization of the geometries to maximize their efficiency using mean-line models. Centrifugal compressors, axial-flow and radial-inflow turbines have been considered. Various geometries are identified to achieve similar high efficiencies, highlighting the need for additional criteria in selecting the optimal design. For this particular combined cycle, the results also reveal that variations in turbomachinery efficiency have a relatively minor impact on overall cycle efficiency, with turbine efficiency exerting a more decisive influence than compressor efficiency.
Resumen divulgativo:
La Energía Solar de Concentración es prometedora por ser gestionable y dar estabilidad en la red, pero su alto costo limita su adopción, lo que puede solucionarse con la hibridación con turbinas de gas y ciclos Brayton de CO2 supercrítico, para el que se analiza un diseño de turbomáquinas..
Palabras clave: S-CO2 Power Cycles, Concentrated Solar Plants, S-CO2 Compressors, S-CO2 Turbines, Decarbonization, Integrated Combined Power Cycles
DOI:
https://doi.org/10.52825/solarpaces.v3i
Publicado en: SolarPACES Conference Proceedings, vol. 3, pp: 1-7
Fecha de publicación: 27-ago-2025
Cita:
E.M. Arenas, M. Muñoz, A. Cantizano, J.I. Linares, M.J. Montes, A.J. Rovira, "Preliminary design of S-CO2 turbomachinery and its influence on the performance of an integrated solar combined cycle", presentado en 30th International Conference on Concentrating Solar Power and Chemical Energy Systems - SolarPACES 2024, Roma, Italia, 08-11 octubre 2024. En: SolarPACES Conference Proceedings, vol. 3, pp. 1-7, doi: 10.52825/solarpaces.v3i
IIT-24-368C