高晋. 特大型LNG储罐穹顶结构承载实验与设计计算[J]. 油气储运, 2022, 41(10): 1175-1180,1224. DOI: 10.6047/j.issn.1000-8241.2022.10.007
引用本文: 高晋. 特大型LNG储罐穹顶结构承载实验与设计计算[J]. 油气储运, 2022, 41(10): 1175-1180,1224. DOI: 10.6047/j.issn.1000-8241.2022.10.007
GAO Jin. Bearing experiment and design calculation of dome structure of extra-large LNG storage tank[J]. Oil & Gas Storage and Transportation, 2022, 41(10): 1175-1180,1224. DOI: 10.6047/j.issn.1000-8241.2022.10.007
Citation: GAO Jin. Bearing experiment and design calculation of dome structure of extra-large LNG storage tank[J]. Oil & Gas Storage and Transportation, 2022, 41(10): 1175-1180,1224. DOI: 10.6047/j.issn.1000-8241.2022.10.007

特大型LNG储罐穹顶结构承载实验与设计计算

Bearing experiment and design calculation of dome structure of extra-large LNG storage tank

  • 摘要: 特大型LNG储罐穹顶跨度大,结构不均匀度大幅增加,结构稳定性设计计算面临挑战。以22×104 m3特大型储罐穹顶为研究对象,设计了1:25几何相似穹顶模型,基于惯性矩相似制作模型钢结构杆件,遵循荷载等效和应力一致原则实现模型相似荷载加载,以模拟实际储罐工况。储罐穹顶的静力加载和稳定性实验的结果表明,储罐作业工况不会导致穹顶失稳,实验穹顶可发生弹性失稳。对比穹顶有限元分析结果,稳定性计算的线性特征值屈曲分析误差较大,考虑初始缺陷的双重非线性分析结果精度较高且保守,验证了有限元分析的有效性。基于上述结论,设计了特大型LNG储罐穹顶结构稳定性计算方法,获得储罐穹顶的极限承载力和设计稳定容许承载力,相关成果可为后续特大型LNG储罐的实际工程建设提供参考。

     

    Abstract: As the dome of an extra-large LNG storage tank has a large span and the structural non-uniformity increases significantly, challenges are imposed to the design calculation of the structural stability. Herein, research was conducted based on the dome of a 22×104 m3 extra-large storage tank. Specifically, a 1:25 geometrically similar dome model was designed, the model steel members were made based on the similar moment of inertia, and the similar load was applied to the model by following the principles of load equivalence and stress consistency, so as to simulate the actual working conditions of tank. According to the experimental results of the static loading and stability of the tank dome, the operating conditions of storage tank would not lead to the instability of the dome, while elastic instability may occur to the experimental dome. Compared with the results of the finite element analysis of the dome, the linear eigenvalue buckling analysis of stability calculation has a larger error, and the double nonlinear analysis results considering the initial defects are more accurate and conservative, which verifies the validity of the finite element analysis. Hence, a calculation method for the structural stability of the dome of an extra-large LNG storage tank was designed based on the above conclusions to obtain the ultimate bearing capacity and the allowable bearing capacity for design stability of the tank dome. Additionally, the relevant achievements could provide reference for the practical engineering construction of extra-large LNG tanks in the future.

     

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