High-Temperature Solid-Particle Thermal Energy Storage Integrated with Coal-Fired Power Plants: Current Status and Future Trends
The increasing penetration of renewable energy requires coal-fired power plants to operate with greater flexibility, while deep load reduction and frequent load variations challenge combustion stability, efficiency, and equipment reliability. High-temperature solid-particle thermal energy storage (TES) offers a promising approach to decouple boiler heat supply from turbine power demand. This review compares particle heating, discharging, transport, and system-integration strategies and relates reported findings to key design and operational constraints. Solid-particle storage media can operate over a wide temperature range of approximately 200–1200 °C; silica sand can withstand temperatures up to about 1200 °C and alumina approximately 1100–1200 °C, substantially exceeding the typical operating range of nitrate molten salts (<600 °C). This broad temperature tolerance provides favorable thermal matching with high-temperature boiler flue gas. Direct flue-gas heating shortens the heat-transfer pathway and reduces intermediate heat-transfer stages, although its effects on boiler heat distribution and downstream heating surfaces require careful evaluation. Moving-bed discharging can provide continuous thermal output, while gravity-driven high-temperature transport combined with mechanical lifting after particle cooling can reduce the demand for high-temperature moving components. Based on these findings, a conceptual configuration integrating direct flue-gas heating, particle sensible-heat storage, moving-bed discharging, and temperature-segmented circulation is proposed. Future studies should focus on system-level efficiency, dynamic response, and load-following capability. Preliminary calculations for a 600 MW subcritical unit at 30% THA load show that particle-storage integration increases the boiler outlet flue-gas temperature by only about 1 °C, indicating no apparent increase in low-temperature corrosion risk under the investigated condition.
Authors
- Tuo Zhou (ORCID: https://orcid.org/0000-0002-9787-1755)
- Hairui Yang
- Feifan Li
- Man Zhang
- Fengxian Yao
- Hanning Wang
Institutions
- Ministry of Education of the People's Republic of China (CN)
- Ministry of Education (RO)
- Changchun Institute of Technology (CN)
- Tsinghua University (CN)
Publication Details
- Journal
- Energies
- Published
- 2026-10-05
- DOI
- https://doi.org/10.3390/en19194691
- Primary Topic
- Chemical Looping and Thermochemical Processes
- Type
- article
- Field-Weighted Citation Impact
- 0.00