Coupled Bem And Fem Analysis Of Fluid-structure Interaction In Dual Compartment Tanks

V. Gnitko, Kyryl Degtyariov, V. Naumenko, E. Strelnikova
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引用次数: 16

Abstract

The paper presents a fluid-structure interaction analysis of fuel tanks with cylindrical and spherical compartments partially filled with a liquid. The compound shell of revolution is considered as a container model. The shell is supposed to be thin, so the Kirchhoff–Love linear theory hypotheses are applied. The liquid is an ideal and incompressible one. Its properties and filling levels may be different within each compartment. The shell vibrations coupled with liquid sloshing under the force of gravity have been considered. The tank structure is modelled by a finite element method, whereas liquid sloshing in the compartments is described by a boundary element method. A system of singular integral equations is obtained for evaluating the fluid pressure. At the first stage, both spherical and cylindrical fluid-filled unconnected rigid shells are considered. Different filling levels as well as small radii of free surfaces are taken into account in problems of liquid sloshing in spherical shells. The sloshing frequencies in the presence of complete or partially covered free surfaces are determined for cylindrical shells. The boundary element method has proven to be effective and accurate in all the problems considered. At the second stage, the natural frequencies and modes of the dual compartment tank are obtained including sloshing, elasticity, and gravity effects.
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双室储罐流固耦合有限元分析
本文对部分充液的圆柱形和球形油箱进行了流固耦合分析。将复合旋转壳视为一个容器模型。假设壳层很薄,所以应用了Kirchhoff-Love线性理论假设。这种液体是理想的不可压缩液体。它的性质和填充水平在每个隔间内可能不同。考虑了在重力作用下壳体振动与液体晃动的耦合作用。罐体结构采用有限元法建模,而隔室内液体晃动采用边界元法描述。得到了计算流体压力的奇异积分方程组。在第一阶段,考虑了球形和圆柱形充液非连通刚性壳。考虑了液体在球壳中的晃动问题,考虑了不同填充水平和小半径的自由表面。圆柱壳在完全或部分覆盖的自由表面下的晃动频率是确定的。事实证明,边界元法在所有考虑的问题中都是有效和准确的。在第二阶段,得到了双舱储罐的固有频率和模态,包括晃动、弹性和重力效应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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