Analysis of thermal and mechanical properties with inventory level of the molten salt storage tank in central receiver concentrating solar power plants

被引:0
|
作者
Guo, Haibin [1 ,2 ]
Zang, Chuncheng [1 ,2 ,3 ]
Wang, Zhifeng [1 ,2 ,3 ]
Zhao, Xiaohui [4 ]
Meng, Yue [4 ]
Osorio, Julian D. [5 ]
Mehos, Mark [5 ]
机构
[1] Institute of Electrical Engineering, Chinese Academy of Sciences, No.6 Beiertiao, Zhongguancun, Beijing,100190, China
[2] University of Chinese Academy of Sciences, No.19 (A) Yuquan Rd, Shijingshan District, Beijing,100049, China
[3] Key Laboratory of Long-Duration and Large-Scale Energy Storage (Chinese Academy of Sciences), Beijing,100190, China
[4] Northwest Electric Power Design Institute Co., Ltd. of China Power Engineering Consulting Group, Shanxi,710000, China
[5] Center for Energy Conversion & Storage Systems, National Renewable Energy Laboratory, Golden,CO,80401, United States
关键词
Heat losses - Tanks (containers) - Thermal gradients - Thermal load;
D O I
10.1016/j.applthermaleng.2024.124984
中图分类号
学科分类号
摘要
Molten salt thermal energy storage (TES) tanks ensure steady power output of concentrating solar power (CSP) plants; however, recent tank failures have highlighted the need for further analysis. Current studies primarily focus on analyzing the molten salt flow, heat transfer, and thermal efficiency. Additionally, research on the latest tank structures is limited and lacks newest experimental validation. This study measures temperature and molten salt inventory levels in the high-temperature tank at a 50 MW central receiver CSP plant, connected to the power grid in 2019. A multi-physics model was developed to evaluate thermal and mechanical properties of TES tanks by combining computational fluid dynamics and finite element modeling using real plant data. Heat loss, temperature, displacement, and stress distribution of the tank at different inventory levels were investigated. Results show that ambient air velocity near the tank roof reaches 2.14 m/s, much higher than 0.2 m/s near the wall. The temperatures of inventory fluid and tank are close, varying slightly at different levels due to thermal conduction and radiation. Because the heat loss strongly depends on temperature, the total tank loss remains nearly constant across inventory levels. Larger temperature gradients and thermal stresses are primarily localized along the tank floor edge and the air-salt interface. Notably, the maximum thermal stress at the tank edge is three times higher than that at the interface. The magnitude of total stress changes by less than 5 MPa with and without thermal load, indicating that high temperatures exert only a minor impact on tank stress. In contrast, thermal load significantly affects tank deformation, particularly at the roof edge, where values exceed 150 mm. Despite the large variation in molten salt levels, tank wall temperatures and displacements present a minor change, suggesting a weak correlation with inventory levels. The findings obtained in this study provide important insights on the TES tank that could be used to optimize tank design and operation strategies. © 2024 Elsevier Ltd
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