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A new solution method for vibration analysis of circular cylindrical thin shells with a circumferential surface crack

机译:具有圆周表面裂纹圆柱形薄壳振动分析的新解决方法

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In this paper, a new solution method is proposed for determining the natural frequency of a given mode for a finite-length circular cylindrical thin shell with a circumferential part-through crack. The governing equation of the cracked cylindrical shell is derived by integrating the line-spring model with the classical thin shell theory. The proposed method calculates the natural frequency from an initial trial to satisfy both the governing equations and appropriate boundary conditions through an optimization process. The initial trial is proposed to satisfy the governing equations by using the beam modal function to determine the modal wavenumbers and mode shapes of cylindrical shells in the axial direction, assuming the flexural mode shapes of cylindrical shells in the axial direction to be of the same form as that of a flexural vibration beam with the same boundary conditions. Four representative sets of boundary conditions are considered: simply supported (SS-SS), clamped-clamped (C-C), clamped-simply supported (C-SS), and clamped-free (C-F). Compared with the finite element (FE) method, the proposed solution method is verified to provide an accurate and efficient way to calculate the dynamic characteristics of both intact and cracked cylindrical shells.
机译:在本文中,提出了一种新的解决方案方法,用于确定具有圆周部分通过裂缝的有限长度圆柱形薄壳的给定模式的固有频率。通过将线簧模型与经典薄壳理论集成来源的裂纹圆柱壳的控制方程。该方法通过初始试验计算自然频率,以通过优化过程满足控制方程和适当的边界条件。提出初始试验以满足控制方程,通过使用光束模态功能来确定轴向方向上的圆柱形壳体的模态波数和模式形状,假设圆柱形壳体在轴向上的弯曲模式形状具有相同的形式作为具有相同边界条件的弯曲振动梁的弯曲梁。考虑了四组代表性的边界条件:简单地支持(SS-SS),夹紧夹紧(C-C),夹紧简单地支持(C-SS),并夹紧(C-F)。与有限元(FE)方法相比,验证了所提出的解决方案方法以提供准确有效的方法来计算完整和裂纹圆柱形壳体的动态特性。

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