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首页> 外文期刊>Journal of Sound and Vibration >VIBRATIONAL ENERGY FLOW ANALYSIS USING A SUBSTRUCTURE APPROACH - THE APPLICATION OF RECEPTANCE THEORY TO FEA AND SEA
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VIBRATIONAL ENERGY FLOW ANALYSIS USING A SUBSTRUCTURE APPROACH - THE APPLICATION OF RECEPTANCE THEORY TO FEA AND SEA

机译:基于子结构方法的振动能流分析-接收理论在有限元分析和海洋分析中的应用

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A method for studying the vibrational energy flows through structures based on receptance theory is presented. The structures are considered to be made up of subsystems, which may, in turn, be substructures modelled by using finite element analysis (FEA), each having been separately analyzed for its eigenvalues and eigenvectors. The method may be classified as a form of substructuring using free-free interface conditions. It differs significantly from traditional substructuring in its use of matrices composed of the substructure Green functions, evaluated as summations over their uncoupled modes, to obtain the displacement contributions of the external and boundary coupling forces; also, the method can readily take into account variations in substructure damping. The proposed method additionally calculates the time averaged substructure vibrational energy levels by evaluating the balance between input and dissipated energies and the energy transfers through coupling nodes. It is therefore of particular interest when using FEA substructures to carry out statistical energy analysis (SEA) studies, since the resulting energy data can be readily applied to evaluate SEA parameters such as coupling loss factors. The formulation developed has been implemented as a computer program which uses substructure modal information from a commercial FEA package and then combines this to predict the response of the global model. Two simple examples involving two- and three-dimensional FEA models built from beam elements are presented, which show that there is good agreement between the substructure based predictions and the equivalent global models. Moreover, the method presented is computationally more efficient than using global FEA models, even when all the substructure modes are used. The method is then applied to study the SEA coupling loss factors of two further example structures: first, two thin plates joined along an edge at right angles are examined; and then a second, more complicated structure formed from a section of a large marine vessel is studied. The approach is shown to be applicable to any general finite element model which is considered as an SEA subsystem. (C) 1997 Academic Press Limited. [References: 17]
机译:提出了一种基于接受理论的振动能量流经结构的研究方法。这些结构被认为是由子系统组成的,这些子系统又可以是通过使用有限元分析(FEA)建模的子结构,每个子结构均已分别对其特征值和特征向量进行了分析。可以将方法分类为使用自由界面条件的子结构形式。它与传统的子结构的显着不同之处在于,它使用了由子结构Green函数组成的矩阵,对矩阵的未耦合模式求和,求出它们的作用力,以获得外力和边界力的位移贡献。同样,该方法可以容易地考虑下部结构阻尼的变化。所提出的方法还通过评估输入和耗散能量之间的平衡以及通过耦合节点的能量传递来计算时间平均的子结构振动能级。因此,当使用FEA子结构进行统计能量分析(SEA)研究时,它特别引起关注,因为所得的能量数据可以轻松地用于评估SEA参数(例如耦合损耗因子)。开发的公式已实现为计算机程序,该程序使用来自商业FEA包的子结构模态信息,然后将其组合以预测全局模型的响应。给出了两个简单的示例,涉及由梁单元构建的二维和三维FEA模型,这表明基于子结构的预测与等效的全局模型之间具有良好的一致性。此外,即使使用所有子结构模式,所提供的方法在计算上也比使用全局FEA模型更有效。然后将该方法应用于研究另外两个示例结构的SEA耦合损耗因子:首先,检查沿边缘以直角连接的两个薄板;然后研究由大型船舶的一部分形成的第二个更复杂的结构。该方法显示适用于任何被视为SEA子系统的通用有限元模型。 (C)1997 Academic Press Limited。 [参考:17]

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