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A spectral finite element for wave propagation and structural diagnostic analysis of composite beam with transverse crack

机译:横向裂纹复合梁波传播的频谱有限元和结构诊断分析

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摘要

A spectral finite element with embedded transverse crack is developed and implemented to simulate the diagnostic wave scattering in composite beams with various forms of transverse crack, such as surface-breaking cracks, matrix cracking and fiber fracture. The cracked region is discretized into few internal elements, which are modeled as one-dimensional (1D) waveguides. First-order shear deformable kinematics in each of these waveguides is assumed. Appropriate displacement continuity at the element-internal waveguides are enforced. The equilibrium equations are represented using compact matrix notations. After assembly of the element-internal system of waveguides, the internal nodes are condensed out and finally a two-node finite element in frequency domain is obtained. Using this element, namely a single transverse crack is modeled through only three input parameters, the span-wise crack location and the thickness-wise locations of the crack-tips. Although, the proposed element is not suited for dynamic fracture analysis at the local level, it is best suited for narrow-band as well as broad-band wave-based diagnostic simulations for structural health monitoring applications. Numerical simulations and comparison with detail 2D finite element prediction show highly efficient performance of the proposed element to predict the crack location and overall trends due to various crack configurations. Important conclusions are drawn on the advantages of the proposed approach, limitations of the element and further scope of improved diagnostic analysis of cracked beam.
机译:开发并实现了一种带有嵌入横向裂纹的频谱有限元,以模拟具有各种形式横向裂纹(例如表面破裂,基体破裂和纤维断裂)的复合梁中的诊断波散射。裂纹区域被离散为几个内部元素,这些内部元素被建模为一维(1D)波导。假设这些波导中的每一个都具有一阶剪切可变形运动学。强制在元件内部波导处进行适当的位移连续性。平衡方程使用紧凑矩阵表示法表示。波导单元内部系统组装完成后,内部节点被压缩,最后得到频域上的两节点有限元。使用该元素,即仅通过三个输入参数(即裂纹尖端的翼展方向裂缝位置和厚度方向位置)对单个横向裂缝进行建模。尽管所提出的元素不适用于局部水平的动态裂缝分析,但它最适合用于结构健康监控应用的基于窄带和基于宽带波的诊断模拟。数值模拟和与详细2D有限元预测的比较表明,所提出的元素具有高效的性能,可预测由于各种裂纹配置而产生的裂纹位置和总体趋势。关于所提出的方法的优点,元件的局限性以及改进的裂痕诊断分析的进一步范围,得出了重要的结论。

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