Compartir
Título
Comprehensive review of dynamical simulation models of packed-bed systems for thermal energy storage applications in renewable power production
Autor(es)
Palabras clave
Energy storage technologies
Thermal energy storage
Packed-bed system
Thermoclines numerical simulation
Efficient computing
Charge-discharge efficiencies
Fecha de publicación
2025
Editor
Elsevier
Citación
D. Pérez-Gallego, J. Gonzalez-Ayala, A. Medina, A. Calvo Hernández, Comprehensive review of dynamical simulation models of packed-bed systems for thermal energy storage applications in renewable power production, Heliyon, Volume 11, Issue 4, 2025, e42803, ISSN 2405-8440, https://doi.org/10.1016/j.heliyon.2025.e42803. (https://www.sciencedirect.com/science/article/pii/S2405844025011843)
Resumen
[EN]The need for large-scale energy storage in the context of renewable electricity production
worldwide is evident. Among the various energy storage methods, thermal energy storage stands
out. It is independent of geographical location, allows high storage capacities, does not require
scarce materials, and is cheaper than its direct competitors. Currently, several technologies
are being intensively developed. In some of them, packed-bed systems play a central role: a
heat transfer fluid heats up or releases heat from a porous solid that acts as a thermal energy
reservoir. This work compiles their application to concepts such as concentrated solar power,
pumped thermal energy storage, and compressed or liquid air energy storage. Different physical
models with diverse rfinement
degrees and the corresponding computational schemes are
comprehensively presented. Comparison with previous experimental works includes gas or liquid
heat transfer fluids, sensible or latent heat transfers, and a wide range of temperature levels. It is
shown that the continuous 1D solid phase model solved with an implicit Euler method provides
satisfactory results with a reasonable computing time for various systems. The ifluence
of time
step and spatial mesh is surveyed, as well as that of pressure drops. Efficiencies and stored energies
are calculated for some particular cases, and sensitivity analysis is presented, including parameters
such as fluid velocity in discharge and storage time. Concerning the latter, discharge efficiencies
for long-time storage (between 10 and 15 h) are fairly good, between 0.39 and 0.20.
URI
ISSN
2405-8440
DOI
10.1016/j.heliyon.2025.e42803
Versión del editor
Aparece en las colecciones
- GIOETFE. Artículos [66]













