热能储存
聚合物
材料科学
硅酸盐水泥
热的
工作(物理)
地聚合物水泥
储能
工艺工程
热导率
水泥
复合材料
抗压强度
机械工程
功率(物理)
工程类
热力学
物理
作者
Mohammad Rahjoo,G Goracci,Juan J. Gaitero,Pavel Martauz,Esther Rojas,Jorge S. Dolado
出处
期刊:Materials
[Multidisciplinary Digital Publishing Institute]
日期:2022-10-12
卷期号:15 (20): 7086-7086
被引量:37
摘要
Thermal energy storage (TES) systems are dependent on materials capable of operating at elevated temperatures for their performance and for prevailing as an integral part of industries. High-temperature TES assists in increasing the dispatchability of present power plants as well as increasing the efficiency in heat industry applications. Ordinary Portland cement (OPC)-based concretes are widely used as a sensible TES material in different applications. However, their performance is limited to operation temperatures below 400 °C due to the thermal degradation processes in its structure. In the present work, the performance and heat storage capacity of geopolymer-based concrete (GEO) have been studied experimentally and a comparison was carried out with OPC-based materials. Two thermal scenarios were examined, and results indicate that GEO withstand high running temperatures, higher than 500 °C, revealing higher thermal storage capacity than OPC-based materials. The high thermal energy storage, along with the high thermal diffusion coefficient at high temperatures, makes GEO a potential material that has good competitive properties compared with OPC-based TES. Experiments show the ability of geopolymer-based concrete for thermal energy storage applications, especially in industries that require feasible material for operation at high temperatures.
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