...
首页> 外文期刊>Journal of Sound and Vibration >ACOUSTIC RADIATIONS FOR SUBMERGED ELASTIC STRUCTURES USING NATURAL MODE EXPANSIONS IN CONJUNCTION WITH RADIATION MODES APPROACH
【24h】

ACOUSTIC RADIATIONS FOR SUBMERGED ELASTIC STRUCTURES USING NATURAL MODE EXPANSIONS IN CONJUNCTION WITH RADIATION MODES APPROACH

机译:使用自然模式展开和辐射模式方法结合的水下弹性结构的声辐射

获取原文
获取原文并翻译 | 示例
           

摘要

This work formulates submerged elastic structures using in-vacuo vibrational mode expansions with which the acoustic impedance loading is derived based on radiation mode theory. The displacement of natural modes on the normal direction is expanded as linear combinations of a set of velocity radiation modes that the expansion coefficients characterize as the radiation characteristics of each vibration mode. This type of expansion allows one to represent the surface pressure by the corresponding set of pressure radiation modes. Thus, a symmetric impedance matrix associated with the natural vibration mode expansions is derived when a variational increment is applied to the virtual work done by the surface pressure against the normal displacement. The equation of the submerged structures is obtained according to Hamilton's principles. By incorporating the description of radiation modes, this equation of natural mode expansions is used to study the coupling among vibration modal amplitudes due to the modal cross-impedances and the convergence of near and farfield solutions. In addition, a slender submerged spheroidal shell vibrating axisymmetrically serves as a numerical example to demonstrate the effectiveness of the analysis procedure. This numerical example reveals that the acoustic impedances decrease with ascending mode numbers, causing the high order vibration modes to react independently. Moreover, the convergence of the surface pressure and normal velocity is examined on the basis of independent reaction of the vibration modes. Accurately predicting farfield solutions depends only on the convergence of the surface quantities whose components pertain to strong radiation modes. The numerical example indicates that the number of vibration modes used in the expansion for predicting farfield solutions is less than the modes required for the surface solution.
机译:这项工作使用真空内振动模式展开来公式化水下弹性结构,并根据辐射模式理论推导声阻抗载荷。自然模式在法线方向上的位移被扩展为一组速度辐射模式的线性组合,这些速度辐射模式的特征在于每个振动模式的辐射特性。这种膨胀允许通过相应的一组压力辐射模式来表示表面压力。因此,当将变化增量应用于通过表面压力抵抗法向位移完成的虚拟功时,可以得出与自然振动模式扩展相关的对称阻抗矩阵。根据汉密尔顿原理获得水下结构的方程。通过结合辐射模态的描述,该自然模态扩展方程用于研究由于模态交叉阻抗以及近场和远场解的收敛而引起的振动模态振幅之间的耦合。另外,细长的浸没球状壳体轴对称振动作为数值示例,以证明分析程序的有效性。该数值示例表明,声阻抗会随着模数的增加而减小,从而导致高阶振动模态独立发生反应。此外,基于振动模式的独立反应,检查了表面压力和法向速度的收敛性。准确预测远场解仅取决于其分量与强辐射模式有关的表面量的收敛性。数值示例表明,在扩展中用于预测远场解的振动模式的数量少于表面解所需的模式。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号