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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Modeling of high temperature thermal energy storage in rock beds - Experimental comparison and parametric study
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Modeling of high temperature thermal energy storage in rock beds - Experimental comparison and parametric study

机译:岩床高温热能储存建模 - 实验比较与参数研究

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摘要

The increasing penetration of renewables in energy systems requires the integration of energy storage units into electrical grids as a crucial aspect. Nevertheless, current ES technologies show, as a common issue, an excessive capital cost, which prevents them from being implemented on a large scale. The combination of high temperature thermal energy storage and bottom steam cycles has recently become an object of interest as a potential cost-effective alternative to traditional ES. In this study, a two-dimensional model of an existing high temperature thermal energy storage rock bed unit with 450 kWh(th) of thermal capacity is implemented. A description of the geometry, equations and boundary conditions is provided, as well as a comparison of the model results with the experimental data logged from the reference testing unit. A brief discussion about the solution method and the relative error on the final results is also presented. A study regarding the charge phase was performed, with the main focus on the modification of some parameters of interest such as rock size, air flow rate, rock type and insulation material. Results are presented in terms of two-dimensional temperature profiles, charge efficiencies and heat losses, highlighting the differences between the scenarios considered. Thermal charge efficiency was found in the range 69-96% for the considered simulations, and different improvement aspects are suggested for future studies.
机译:随着一个关键方面,可再生能源的普及更加普遍的可再生能源的渗透需要将能量存储单元集成到电网中。尽管如此,当前的ES技术表明,作为一个常见问题,过度的资本成本,这可以防止他们在大规模上实施。高温热能储存和底部蒸汽循环的组合最近成为感兴趣的对象,作为传统es的潜在经济有效的替代品。在该研究中,实现了具有450 kWh(Th)热容量的现有高温热能储能岩床单元的二维模型。提供了几何,方程和边界条件的描述,以及模型结果与从参考测试单元记录的实验数据的比较。还提出了关于解决方案方法和最终结果上的相对误差的简要讨论。进行了关于电荷阶段的研究,主要重点关注岩石尺寸,空气流量,岩型和绝缘材料的一些兴趣参数的修改。结果以二维温度谱,电荷效率和热量损失提出,突出了所考虑的场景之间的差异。对于所考虑的模拟,热充电效率在69-96%的范围内,并提出了不同的改进方面用于未来的研究。

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