刘晶波, 宝鑫, 谭辉, 王东洋, 李雪. 环形含液容器动力分析[J]. 工程力学, 2018, 35(1): 66-73. DOI: 10.6052/j.issn.1000-4750.2016.09.0684
引用本文: 刘晶波, 宝鑫, 谭辉, 王东洋, 李雪. 环形含液容器动力分析[J]. 工程力学, 2018, 35(1): 66-73. DOI: 10.6052/j.issn.1000-4750.2016.09.0684
LIU Jing-bo, BAO Xin, TAN Hui, WANG Dong-yang, LI Xue. DYNAMIC ANALYSIS OF ANNULAR LIQUID CONTAINERS[J]. Engineering Mechanics, 2018, 35(1): 66-73. DOI: 10.6052/j.issn.1000-4750.2016.09.0684
Citation: LIU Jing-bo, BAO Xin, TAN Hui, WANG Dong-yang, LI Xue. DYNAMIC ANALYSIS OF ANNULAR LIQUID CONTAINERS[J]. Engineering Mechanics, 2018, 35(1): 66-73. DOI: 10.6052/j.issn.1000-4750.2016.09.0684

环形含液容器动力分析

DYNAMIC ANALYSIS OF ANNULAR LIQUID CONTAINERS

  • 摘要: 环形含液容器在以华龙一号、AP1000和CAP1400为代表的第三代核电站中得到普遍应用,其本身的动力特性与动力反应是有待解决的重要安全问题。该文以环形含液系统动力学方程的建立和求解为主要研究目的,基于势流体理论和第二类边界条件的Bessel函数展开,推导环形容器液体小幅振动的振动频率和动液压力响应的理论解。通过极限分析、与试验结果以及与有限元方法对比,验证理论公式的正确性。对环形水箱动力反应问题开展计算,初步分析了环形水箱内外环动水压力反应规律和特点,并与同几何尺寸的圆柱形水箱对比,分析其振动频率与动液压力响应规律的异同。结果表明:由于环形水箱与圆柱形水箱液体振动频率的差异,两者动水压力反应在可引发其中某一模型液体共振的荷载作用下将出现较大差异。该文研究可为环形含液容器的工程应用提供理论支持。

     

    Abstract: Annular liquid containers are widely used in the third-generation nuclear power plants represented by Hualong-1, AP1000 and CAP1400. Their dynamic characteristics and dynamic response are important safety issues that require attention. This study, thus, primarily aims at establishing and solving the dynamic equations of annular liquid containers. Theoretical solutions of the vibration frequency and hydrodynamic pressure response of the liquid in annular container were derived using potential flow theory and Bessel series expansion with Neumann boundary condition. The theoretical equations were verified by performing limit analysis and comparing them with experimental and Finite Element Method (FEM) results. Accordingly, the dynamic reactions of annular liquid containers were predicted and the characteristics of hydrodynamic pressure response on inner and outer walls were analyzed. The vibration frequency and dynamic pressure response of annular liquid container were compared with those of the cylindrical liquid container of the same size. It was revealed that the hydrodynamic pressure responses of two models varied significantly under the load at the resonance frequency of either one due to the difference in vibration frequencies between annular containers and cylindrical containers. Current study can provide theoretical foundation for the engineering applications of annular liquid containers.

     

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