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Vibrational power flow analysis of a submerged viscoelastic cylindrical shell with wave propagation approach

机译:水下黏弹性圆柱壳振动动力流的波传播分析

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The vibrational power flow in a submerged infinite unconstrained viscoelastic cylindrical shell using wave propagation approach is presented. The harmonic motion of the shell and the pressure field in the fluid is described by Flugge shell theory and Helmholtz equation, respectively. The damping characteristics are considered by complex modulus method. Vibrational power flow inputting into the coupled system and propagating along the shell axial direction are both studied. The numerical results indicate input power flow varies with driving frequency and circumferential mode order, and the viscoelastic damping layer will restrict the exciting force inputting power flow into the shell especially for a thicker damping layer and a higher circumferential mode order. Cut-off frequencies do not exist in viscoelastic shell so that the exciting force can input power flow into the shell at any frequency and for any circumferential mode order. Relative to the nearly linear attenuation form of propagation power flow in elastic shell, propagation power flow in viscoelastic shell is exhibited in exponential attenuation form. Viscoelastic layer will have a good damping effect especially at middle or high frequencies. The conclusion may be valuable to the application of viscoelastic damping material on noise and vibration control of submarines and underwater pipes. (c) 2007 Elsevier Ltd. All rights reserved.
机译:利用波传播方法,给出了浸没式无限约束粘弹性圆柱壳的振动能流。壳的谐波运动和流体中的压力场分别由Flugge壳理论和Helmholtz方程描述。通过复模量法考虑阻尼特性。都研究了输入到耦合系统中并沿壳体轴向传播的振动功率流。数值结果表明,输入动力流随驱动频率和周向模态而变化,并且粘弹性阻尼层会限制输入动力流向壳体的激振力,特别是对于较厚的阻尼层和更高的周向模态而言。粘弹性壳中不存在截止频率,因此,激振力可以以任何频率和任何圆周模式顺序将功率输入到壳中。相对于弹性壳中传播功率流的近似线性衰减形式,粘弹性壳中的传播功率流以指数衰减形式表现。粘弹性层将具有良好的阻尼效果,尤其是在中频或高频时。该结论对于粘弹性阻尼材料在潜艇和水下管道的噪声和振动控制中的应用可能是有价值的。 (c)2007 Elsevier Ltd.保留所有权利。

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