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.

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Publication Details

Journal
Energies
Published
2026-10-05
DOI
https://doi.org/10.3390/en19194691
Primary Topic
Chemical Looping and Thermochemical Processes
Type
article
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article

High-Temperature Solid-Particle Thermal Energy Storage Integrated with Coal-Fired Power Plants: Current Status and Future Trends

Tuo Zhou, Hairui Yang, Feifan Li, Man Zhang et al.
Energies
Chemical Looping and Thermochemical Processes
article

High-Temperature Solid-Particle Thermal Energy Storage Integrated with Coal-Fired Power Plants: Current Status and Future Trends

Tuo Zhou, Hairui Yang, Feifan Li, Man Zhang, Fengxian Yao, Hanning Wang
article en

Abstract

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.

EnergiesVol. 19(19)
Ministry of Education of the People's Republic of China (CN), Ministry of Education (RO), Changchun Institute of Technology (CN), Tsinghua University (CN)
Openalex Percentile: Top 23%
Chemical Looping and Thermochemical Processes
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