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Dynamic stiffness method for inplane free vibration of rotating beams including Coriolis effects

机译:包含科里奥利效应的旋转梁平面内自由振动的动态刚度方法

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摘要

The paper addresses the in-plane free vibration analysis of rotating beams using an exact dynamic stiffness method. The analysis includes the Coriolis effects in the free vibratory motion as well as the effects of an arbitrary hub radius and an outboard force. The investigation focuses on the formulation of the frequency dependent dynamic stiffness matrix to perform exact modal analysis of rotating beams or beam assemblies. The governing differential equations of motion, derived from Hamilton's principle, are solved using the Frobenius method. Natural boundary conditions resulting from the Hamiltonian formulation enable expressions for nodal forces to be obtained in terms of arbitrary constants. The dynamic stiffness matrix is developed by relating the amplitudes of the nodal forces to those of the corresponding responses, thereby eliminating the arbitrary constants. Then the natural frequencies and mode shapes follow from the application of the Wittrick–Williams algorithm. Numerical results for an individual rotating beam for cantilever boundary condition are given and some results are validated. The influences of Coriolis effects, rotational speed and hub radius on the natural frequencies and mode shapes are illustrated.
机译:本文使用精确的动态刚度方法解决了旋转梁的面内自由振动分析问题。分析包括自由振动运动中的科里奥利效应,以及任意轮毂半径和外侧力的影响。研究集中在频率依赖的动态刚度矩阵的制定上,以对旋转梁或梁组件进行精确的模态分析。使用Frobenius方法求解从汉密尔顿原理导出的控制运动微分方程。由哈密顿量公式得出的自然边界条件使得可以根据任意常数来获得节点力的表达式。动态刚度矩阵是通过将节点力的振幅与相应响应的振幅相关联来开发的,从而消除了任意常数。然后,自然频率和模态形状来自Wittrick-Williams算法的应用。给出了悬臂边界条件下单个旋转梁的数值结果,并对一些结果进行了验证。说明了科里奥利效应,转速和轮毂半径对固有频率和振型的影响。

著录项

  • 作者

    Banerjee J. R.; Kennedy D.;

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  • 年度 2014
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  • 原文格式 PDF
  • 正文语种 en
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