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储能系统技术
★ 5.0
内加热填充床储热罐高温固体-空气储能温度演化的渐近解析解
Asymptotic analytical solution for the temperature evolution in internally-heated packed-bed tanks for high-temperature solid-air energy storage
| 作者 | A.Martín-Alcántar · Ramon Fernandez Feri |
| 期刊 | Applied Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 377 卷 |
| 技术分类 | 储能系统技术 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | Optimal internal heat source location and thickness enhances TES performance. |
语言:
中文摘要
采用多孔介质中带有局部热源的单向流动方程,对内加热式填充床热能储存(IH-TES)装置中的流体与固体温度进行建模。在无热源项的情况下,通过文献中已有的TES装置实验数据验证了模型方程的数值结果。利用摄动方法获得了该方程组的近似解析解,并基于此解推导出适用于IH-TES系统设计与运行的有用关系式。内部热源的存在显著改变了系统相对于以往TES装置研究结果的操作尺度和定性行为特征。本文根据所获得的解析解,提出了若干改进IH-TES系统设计与运行的实用建议。例如,为实现最优性能,热源应布置在填充床长度约四分之三的位置处,且其厚度应非常小,该厚度与固体热导率成正比,与流体速度及气体体积热容成反比。此外,建议采用高孔隙率以缩短加热时间。
English Abstract
Abstract Unidirectional flow equations through a porous medium with a localized heat source are used to model the fluid and solid temperatures in a packed-bed, internally-heated thermal energy storage (IH-TES) unit. Numerical results in absence of the heat source term are used to validate the model equations against experimental data from TES units available in the literature. An analytical approximate solution of the equations is obtained via perturbation methods. This solution is used to derive useful relations for the design and operation of IH-TES systems. The presence of the internal heat source substantially modifies the operational scales and the qualitative behavior of the system in relation to previous results on TES units. Practical recommendations to improve the design and operation of the IH-TES system resulting from the analytical solution are provided. For instance, it is found that the heat source must be located at about three-quarters of the packed-bed length for optimal performance , with a very small thickness, proportional to the solid thermal conductivity and inversely proportional to the fluid velocity and the volumetric heat capacity of the gas. Also that a high porosity is recommendable to decrease the heating time.
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SunView 深度解读
该固态储热技术研究为阳光电源储能系统热管理提供理论参考。论文揭示的热源优化布局(3/4位置)、高孔隙率设计原则可应用于PowerTitan液冷系统和ST系列PCS散热优化。解析解方法对预测性维护算法开发有启发,可集成至iSolarCloud平台实现储能柜温度场建模与故障预警。固-气耦合传热机理亦适用于户外储能集装箱通风散热设计,提升高温环境下系统可靠性与循环寿命。