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Investigation of cascaded shell and tube latent heat storage systems for solar tower power plants

机译:太阳能塔发电厂级联壳管和管潜热储存系统的研究

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Solar thermal electricity generation is taking up increasing proportions of future power generation worldwide. Recent research indicates that a closed-loop Brayton cycle using supercritical carbon dioxide (s-CO2) offers the potential of higher power cycle efficiency versus the conventional superheated steam cycle at temperatures relevant for CSP applications. Thermal energy storage solves the time mismatch between the solar energy supply and the electricity peak demand and allows for a more efficient use of the turbine and other power block components. The narrow storage temperature range required for the s-CO2 cycle advantages the use of latent heat storage, which has a higher storage density compared to the conventional two-tank storage. This paper demonstrates a design of a cascaded shell and tube phase change storage system potentially applicable for the s-CO2 cycle. A previously developed effectiveness-number of transfer unit method is employed as a design guide and computational fluid dynamics modelling is performed to examine the sensible energy extraction. The results prove that the effectiveness of the extracted sensible energy can be increased by increasing the number of phase change storage systems in series. Stainless steel (SS) AISI 316 as well as a creep resistant SS AISI 446 is considered as the tube material in the design and results suggest that using AISI 446 can minimize the overall amount of storage and tube materials.
机译:太阳能热发电正在占据全球未来发电量的增加。最近的研究表明,使用超临界二氧化碳(S-CO2)的闭环布雷顿循环提供更高功率循环效率的潜力与传统的过热蒸汽循环在与CSP应用相关的温度下。热能存储解决太阳能供应和电峰值需求之间的时间不匹配,并允许更有效地使用涡轮机和其他动力块部件。 S-CO2循环所需的窄存储温度范围优点利用潜热存储器,与传统的双罐存储相比具有更高的存储密度。本文演示了级联壳和管相变存储系统的设计,可能适用于S-CO2循环。使用以前开发的转移单元方法的有效性 - 作为设计指导,并且进行了计算流体动力学建模以检查可明智的能量提取。结果证明,通过增加串联的相变存储系统的数量,可以提高提取的合理能量的有效性。不锈钢(SS)AISI 316以及抗蠕变性SS AISI 446被认为是设计中的管材,结果表明,使用AISI 446可以最小化储存和管材料的总体量。

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