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Numerical study on vibration characteristics of the underwater partially fluid-filled cylindrical shell

机译:水下部分流体填充圆柱壳振动特性的数值研究

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The structural finite element coupled with acoustic finite element method is employed to study the vibration characteristics of an underwater partially water-filled cylindrical shell. Taking the underwater cylindrical shell without internal fluid for example, the natural frequency and vibration response of the shell are calculated with the numerical method. The analytical results of the model are also presented to illustrate the accuracy of the numerical method. Then by changing the depth of the internal fluid, the effects of internal fluid on the vibration characteristics of the underwater shells are analyzed. And the effects of the direction and location of the applied loads on the sound radiation as well as the forced vibration are discussed. The results show that the internal liquid has influences on the vibration characteristics and the sound radiation of the system, which leads to complicated mode shapes for the partial interaction between the internal liquid with the shell. When the depth of the internal liquid increases, the natural frequency of the coupled structure decreases, and the vibration mode becomes irregular. For the forced vibration, the response is maximum when radial excitation is applied at a location where the shell isn't coupled to the internal fluid. The peak of the curve shifts to the lower frequency as the depth of the internal liquid increases.
机译:采用与声学有限元法耦合的结构有限元件来研究水下部分充水圆柱壳的振动特性。以没有内部流体的情况而取水下圆柱壳,用数值方法计算壳的固有频率和振动响应。还提出了模型的分析结果以说明数值方法的准确性。然后通过改变内部流体的深度,分析了内部流体对水下壳的振动特性的影响。讨论了施加的载荷的方向和位置对声辐射的影响以及强制振动。结果表明,内部液体对系统的振动特性和声辐射产生了影响,这导致复杂的模式形状用于内部液体与壳体之间的部分相互作用。当内部液体的深度增加时,耦合结构的固有频率降低,并且振动模式变得不规则。对于强制振动,当施加径向激励在壳体未耦合到内部流体的位置时,响应最大。随着内部液体的深度增加,曲线的峰值变为较低频率。

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