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Identification of slant cracks in a cantilever beam using design of experiment and neuro-genetic technique

机译:实验设计和神经遗传学技术识别悬臂梁倾斜裂纹

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摘要

Cracks present a serious threat to the performance of beam-like structures. In this paper, the flexural vibration of a cantilever beam having a slant crack is considered. The beam natural frequencies are obtained for various crack locations, depths and angles, using the finite element method. These natural frequencies and crack specifications are then used to train a neural network. The input of the neural network is the crack specifications and the output is five natural frequencies of the beam. With the trained neural network, genetic algorithm is then used to determine the beam crack specifications by minimizing the differences from the measured frequencies. Simulations are performed to evaluate performance of the neural network. Results show that the proposed scheme can detect slant cracks in cantilever beams with good accuracy.
机译:裂缝严重威胁了梁状结构的性能。在本文中,考虑了具有倾斜裂纹的悬臂梁的弯曲振动。使用有限元方法获得了各种裂纹位置,深度和角度的梁固有频率。然后将这些固有频率和裂纹规格用于训练神经网络。神经网络的输入是裂缝规格,输出是梁的五个固有频率。通过训练有素的神经网络,然后使用遗传算法通过最小化与测量频率的差异来确定梁裂纹规格。进行仿真以评估神经网络的性能。结果表明,该方案能较好地检测悬臂梁的倾斜裂纹。

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