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Free vibration disturbance and local mesh refinement induced by microcrack damage in circularly curved beams

机译:圆弧梁微裂纹损伤引起的自由振动扰动和局部网格细化

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摘要

Purpose - This study aimed to solve the engineering problem of free vibration disturbance and local mesh refinement induced by microcrack damage in circularly curved beams. The accurate identification of the crack damage depth, number and location depends on high-precision frequency and vibration mode solutions; therefore, it is critical to obtain these reliable solutions. The high-precision finite element method for the free vibration of cracked beams needs to be developed to grasp and control error information in the conventional solutions and the non-uniform mesh generation near the cracks. Moreover, the influence of multi-crack damage on the natural frequency and vibration mode of a circularly curved beam needs to be detected. Design/methodology/approach - A scheme for cross-sectional damage defects in a circularly curved beam was established to simulate the depth, location and the number of multiple cracks by implementing cross-section reduction induced by microcrack damage. In addition, the h-version finite element mesh adaptive analysis method of the Timoshenko beam was developed. The superconvergent solution of the vibration mode of the cracked curved beam was obtained using the superconvergent patch recovery displacement method to determine the finite element solution. The superconvergent solution of the frequency was obtained by computing the Rayleigh quotient. The superconvergent solution of the eigenfunction was used to estimate the error of the finite element solution in the energy norm. The mesh was then subdivided to generate an improved mesh based on the error. Accordingly, the final optimised meshes and high-precision solution of natural frequency and mode shape satisfying the preset error tolerance can be obtained. Lastly, the disturbance behaviour of multi-crack damage on the vibration mode of a circularly curved beam was also studied. Findings - Numerical results of the free vibration and damage disturbance of cracked curved beams with cracks were obtained. The influences of crack damage depth, crack damage number and crack damage distribution on the natural frequency and mode of vibration of a circularly curved beam were quantitatively analysed. Numerical examples indicate that the vibration mode and frequency of the beam would be disturbed in the region close to the crack damage, and a greater crack depth translates to a larger frequency change. For multi-crack beams, the number and distribution of cracks also affect the vibration mode and natural frequency. The adaptive method can use a relatively dense mesh near the crack to adapt to the change in the vibration mode near the crack, thus verifying the efficacy, accuracy and reliability of the method. Originality/value - The proposed combination of methodologies provides an extremely robust approach for free vibration of beams with cracks. The non-uniform mesh refinement in the adaptive method can adapt to changes in the vibration mode caused by crack damage. Moreover, the proposed method can adaptively divide a relatively fine mesh at the crack, which is applied to investigating free vibration under various curved beam angles and crack damage distribution conditions. The proposed method can be extended to crack damage detection of 2D plate and shell structures and three-dimensional structures with cracks.
机译:目的 - 解决圆弧梁微裂纹损伤引起的自由振动扰动和局部网格细化的工程问题。裂纹损伤深度、数量和位置的准确识别取决于高精度的频率和振动模式解决方案;因此,获得这些可靠的解决方案至关重要。需要发展高精度有限元方法,用于掌握和控制常规解中的误差信息和裂缝附近非均匀网格生成。此外,还需要检测多裂纹损伤对圆曲梁固有频率和振动模式的影响。设计/方法/途径 - 建立了圆弧梁截面损伤缺陷方案,通过微裂纹损伤诱导的截面减小来模拟多裂纹的深度、位置和数量。此外,还开发了Timoshenko光束的h型有限元网格自适应分析方法。采用超收敛贴片恢复位移法确定有限元解,得到裂纹曲梁振动模态的超收敛解。通过计算瑞利商得到频率的超收敛解。利用特征函数的超收敛解来估计有限元解在能量范数中的误差。然后对网格进行细分,以根据误差生成改进的网格。因此,最终得到满足预设误差容限的固有频率和振型的优化网格和高精度解。最后,研究了多裂纹损伤对圆曲梁振动模式的扰动行为。研究结果 - 获得了有裂缝的开裂曲梁的自由振动和损伤扰动的数值结果。定量分析了裂纹损伤深度、裂纹损伤次数和裂纹损伤分布对圆弧梁固有频率和振动模式的影响。数值算例表明,在靠近裂纹损伤的区域,光束的振动模式和频率会受到扰动,裂纹深度越大,频率变化越大。对于多裂纹梁,裂纹的数量和分布也会影响振动模式和固有频率。该自适应方法可以利用裂纹附近相对密集的网格来适应裂纹附近振动模式的变化,从而验证了该方法的有效性、准确性和可靠性。独创性/价值 - 所提出的方法组合为有裂纹的梁的自由振动提供了一种极其稳健的方法。自适应方法中的非均匀网格细化能够适应裂纹损伤引起的振动模式变化。此外,所提方法能够自适应地划分裂纹处较细的网格,适用于研究各种曲面光束角和裂纹损伤分布条件下的自由振动。该方法可以推广到二维板壳结构和有裂纹的三维结构的裂纹损伤检测。

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