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首页> 外文期刊>Energies >Seasonal Thermal-Energy Storage: A Critical Review on BTES Systems, Modeling, and System Design for Higher System Efficiency
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Seasonal Thermal-Energy Storage: A Critical Review on BTES Systems, Modeling, and System Design for Higher System Efficiency

机译:季节性热能存储:对BTES系统,建模和系统设计的严格审查,以提高系统效率

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Buildings consume approximately ? of the total electricity generated in the United States, contributing significantly to fossil fuel emissions. Sustainable and renewable energy production can reduce fossil fuel use, but necessitates storage for energy reliability in order to compensate for the intermittency of renewable energy generation. Energy storage is critical for success in developing a sustainable energy grid because it facilitates higher renewable energy penetration by mitigating the gap between energy generation and demand. This review analyzes recent case studies—numerical and field experiments—seen by borehole thermal energy storage (BTES) in space heating and domestic hot water capacities, coupled with solar thermal energy. System design, model development, and working principle(s) are the primary focus of this analysis. A synopsis of the current efforts to effectively model BTES is presented as well. The literature review reveals that: (1) energy storage is most effective when diurnal and seasonal storage are used in conjunction; (2) no established link exists between BTES computational fluid dynamics (CFD) models integrated with whole building energy analysis tools, rather than parameter-fit component models; (3) BTES has less geographical limitations than Aquifer Thermal Energy Storage (ATES) and lower installation cost scale than hot water tanks and (4) BTES is more often used for heating than for cooling applications.
机译:建筑物消耗大约?占美国发电总量的一半,对化石燃料的排放做出了重大贡献。可持续和可再生能源的生产可以减少化石燃料的使用,但必须存储能源可靠性,以补偿可再生能源发电的间歇性。能量存储对于成功开发可持续能源网格至关重要,因为它通过减轻能源生产与需求之间的差距促进了更高的可再生能源渗透。这篇综述分析了近期的案例研究(数值和现场实验),这些案例是通过空间供热和生活热水容量中的井下热能存储(BTES)以及太阳能来实现的。系统设计,模型开发和工作原理是此分析的主要重点。还介绍了当前有效地对BTES进行建模的工作提要。文献综述表明:(1)日储和季节储并用时,储能最有效。 (2)在与整个建筑能源分析工具集成的BTES计算流体动力学(CFD)模型之间,而不是参数拟合组件模型之间,没有建立的联系; (3)BTES的地域限制小于含水层热能存储(ATES),并且安装成本规模比热水罐低;(4)BTES较常用于暖气而非制冷应用。

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