STORESOL
Optimal design of the sensible heat storage system of a central receiver solar power plant operating with gas cycles
The project intends to optimize the thermal energy storage (TES) system of Concentrated Solar Power (CSP) plants. A detailed analysis of the performance of a novel TES system design of sensible heat based on granular material will be done experimentally and numerically. Several configurations of the granular material of the TES system will be studied including the fixed bed configuration, the operation as a fluidized bed, and the performance of a novel design of confined granular material. The novel design will maximise the exergy available of the working fluid beyond its urrent operation limits. The ultimate aim is to increase the global performance of CSP plants.
Thermo-economic optimization of a novel confined thermal energy storage system based on granular material
The effect of the thermocline thickness was combined with a thermo-economic analysis of a confined bed TES system proposed for a case of study. The new confined bed here proposed was optimized considering thermodynamics aspects, namely the fluid exergy increment in the bed, and economic factors, specifically the total investment cost of the TES system. The optimization resulted in low values of the fluid velocity, between 0.2 and 0.4 m/s, but still higher than the minimum fluidization velocity of sand particles of 750 μm, justifying the requirement of a confined bed, and low bed aspect ratios, between 0.25 and 0.9, to prevent excessively high fluid pressure drops. However, the bed aspect ratio increases significantly for higher granular material particle sizes, up to a ratio of bed height to diameter of 3 for a particle size of 10 mm and a TES demand time of 6 h.
Applied Thermal Engineering Volume 224, April 2023, 120123
Total investment cost per unit of fluid exergy increment.
Modeling sensible thermal energy storage in solid blocks for concentrating solar power
In concentrating solar power plants, the mismatch between solar energy availability and energy demand requires the development of thermal storage systems. This study analyses a solid thermal energy storage module made of alumina. The block has a honeycomb pattern where the air flows through hexagonal channels. A transient 1D model, based on the finite difference method, is implemented and verified against CFD simulations. Such a simplified model considers the temperature dependence of thermodynamic properties for air and alumina. With the same boundary conditions, a 3D RNG k-ε turbulence CFD model is built, whose mesh and time step are assessed by means of sensitivity analyses. The average temperature difference between both models is as low as 14.8 K, even though the simplified one is around 300 times faster than the detailed CFD model.
Results in Engineering Volume 18, June 2023, 101051
Contour maps of temperature along the longitudinal section of the module at four instants of time during the charging process.
Experimental analysis of a novel confined bed system for thermal energy storage
Journal of Energy Storage Volume 69, 1 October 2023, 107972
Experimental (Exp.) and numerical (Mod.) evolution of the distribution of temperatures along the confined bed height during the discharge process.
Experimental study of the discharge process of a thermal energy storage system based on granular material operated as a fluidized or confined bed
Journal of Energy Storage Volume 73, Part C, 15 December 2023, 109173
Comparison of the evolution of the temperature distribution in the TES systems during the discharge process with an air volumetric flow rate of 700 Nlpm operating as a fluidized (top) and confined (bottom) bed.
Time evolution of the temperature measured by various thermocouples during the discharge of the fluidized and confined bed TES systems.
Other scientitic papers related with the project
Numerical comparison of thermal energy performance between spouted, fluidized and fixed beds using supercritical CO2as fluidizing agent
Li, A., Jiménez, F.H., Pleite, E.C., Wang, Z., Zhu, L.
Case Studies in Thermal Engineering, 2022, 39, 102469
Thermomechanical behavior of mechanical attachments in solar power tower receivers under preheating conditions: A numerical study
Pérez-Álvarez, R., Cano-Pleite, E., Hernández-Jiménez, F., Acosta-Iborra, A.
Applied Thermal Engineering, 2024, 236, 121444
Conferences
Fluidization XVII, May 21, 2023 to May 25, 2023, Edinburgh, Scotland, United Kingdom
- Soria-Verdugo, J. F. Guil-Pedrosa, F. Hernández-Jiménez, L.M. García-Gutiérrez, E. Cano-Pleite , N. García-Hernando. Experimental Analysis of a Confined Bed of Granular Material As Thermal Energy Storage System
SolarPACES Conference, October 10 – October 13, 2023, Sydney, Australia
- Soria-Verdugo, I. Jiménez-Montero, E. Cano-Pleite, F. Hernández-Jiménez, L.M. García-Gutiérrez, A. Sánchez-González. Experimental Characterization of Sensible Heat Storage in Solids: Granular Material vs. Solid Blocks
XII National and III International Conference on Engineering Thermodynamics. Universidad Carlos III de Madrid. 29th June – 1st July 2022. Spain.
- Hernández-Jiménez, L.M. García-Gutiérrez, E. Cano-Pleite, A. Soria-Verdugo, Exergetic and economic optimization of a novel thermal energy storage system based on granular material.
- Díaz-Alonso, S.; Sánchez-González, A.; Hernández-Jiménez, F.; Soria-Verdugo, A. Modeling sensible thermal energy storage in solid blocks for concentrating solar power. Oral presentation.
WCPT9 – World Congress on Particle Technology. 18th-22nd, 2022, Madrid (Spain).
- E. Cano-Pleite, F. Hernández-Jiménez, L.M. García-Gutiérrez, A. Soria-Verdugo, Thermo-economic optimization of a novel confined thermal energy storage system based on granular material. Oral presentation and poster.
SolarPACES Conference September 26-30, 2022, Albuquerque, New Mexico
- Sánchez-González, A.; Erasmus, D.J.; Georgiou, M.C. Aiming strategy for circular aperture receiver: Experimental validation at PROTEAS. Online oral presentation.