首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part M. Journal of Engineering for the Maritime Environment >Developments of a mixed finite element substructure-subdomain method for fluid-structure interaction dynamics with applications in maritime engineering
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Developments of a mixed finite element substructure-subdomain method for fluid-structure interaction dynamics with applications in maritime engineering

机译:流体-结构相互作用动力学的有限元子结构-子域混合方法的发展及其在海事工程中的应用

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Theoretical development of a mixed finite element substructure-subdomain method for dynamic analysis of fluid-structure interaction systems (FSIS) with applications in maritime engineering is summarized in this paper. Governing equations for FSIS are presented. Boundary conditions for air-liquid interfaces are formulated to account for mass density discontinuity of different fluids. The frequency shift technique is demonstrated for FSIS, which establishes a basis for the design of an algorithm for the purpose of dynamic analysis of structure, fluids, and their interactions. A flow chart of the computer program is provided to better illustrate the implementation of the numerical method. Four problems in maritime engineering are simulated using the developed fluid-structure interaction analysis program (FSIAP). Problem 1 investigates the sloshing frequencies of a liquid tank and its dynamic responses to a sinusoidal base motion and El Centro earthquake excitation, respectively. Problem 2 analyses the transient response of a liquefied natural gas (LNG) tank-water system to an explosion wave in the water. Problem 3 studies a structure-acoustic-volume system subject to human footfall impacts, which may explain the 'character' of the footstep noise claimed by people, such as 'thuds', 'thumps', and 'booming'. Problem 4 investigates the dynamic response of an onshore LNG storage tank subject to an impact load. The numerical results are analysed to provide the guidelines for design of maritime products involving FSIS.
机译:总结了流体-结构相互作用系统(FSIS)动态分析的混合有限元子域-子域方法的理论发展及其在海事工程中的应用。提出了FSIS的控制方程。制定了气液界面的边界条件,以说明不同流体的质量密度不连续性。 FSIS演示了频移技术,该技术为动态分析结构,流体及其相互作用建立了算法设计基础。提供了计算机程序的流程图,以更好地说明数值方法的实现。使用已开发的流固耦合分析程序(FSIAP),可以模拟海事工程中的四个问题。问题1分别研究了储液罐的晃动频率及其对正弦基本运动和El Centro地震激励的动态响应。问题2分析了液化天然气(LNG)储罐-水系统对水中爆炸的瞬态响应。问题3研究了受到人为脚步影响的结构-声音-体积系统,这可能解释了人们声称的脚步声噪音的“特征”,例如“砰砰声”,“砰砰声”和“隆隆声”。问题4研究了陆上LNG储罐在受到冲击载荷作用下的动态响应。分析数值结果可为涉及FSIS的海产品设计提供指导。

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