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首页> 外文期刊>Journal of Mechanical Science and Technology >Identification of location and size of a defect in a structural system employing active external excitation and hybrid feature vector components in HMM
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Identification of location and size of a defect in a structural system employing active external excitation and hybrid feature vector components in HMM

机译:使用HMM中的主动外部激励和混合特征向量分量识别结构系统中缺陷的位置和大小

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摘要

For the fault diagnosis of a mechanical system, various kinds of methods have been developed so far. For a structural system having a defect, pattern recognition methods such as Hidden Markov model (HMM) and Artificial neural network (ANN) are widely used in engineering fields. A statistical model can be constructed with one of the methods using various signals that are extracted from the structural system of interest. In the present study, a HMM employing hybrid feature vector measures is proposed for the fault diagnosis of a structural system having a defect. To obtain the hybrid feature vector components, five frequency response peaks obtained with FFT and two additional components obtained with ANN are employed. For the proposed method, an active external excitation having some specific frequency components is also applied to the structure to overcome the noise effect. To verify the effectiveness of the proposed method, a numerical model of a rotating blade having a crack is employed. Acceleration signals extracted from the structural system are employed to develop the proposed model so that the location and size of the crack can be identified. Using the proposed method, the diagnostic accuracy of the identification is significantly improved even with high level of noise in the system.
机译:迄今为止,对于机械系统的故障诊断,已经开发了各种方法。对于具有缺陷的结构系统,模式识别方法例如隐马尔可夫模型(HMM)和人工神经网络(ANN)在工程领域中被广泛使用。可以使用从感兴趣的结构系统中提取的各种信号,使用一种方法构建统计模型。在本研究中,提出了一种采用混合特征向量测度的HMM,用于具有缺陷的结构系统的故障诊断。为了获得混合特征向量分量,采用了通过FFT获得的五个频率响应峰和通过ANN获得的两个附加分量。对于所提出的方法,还将具有某些特定频率分量的有源外部激励应用于该结构以克服噪声影响。为了验证所提出方法的有效性,采用了具有裂纹的旋转叶片的数值模型。从结构系统提取的加速度信号被用于开发所提出的模型,以便可以识别裂纹的位置和大小。使用所提出的方法,即使系统中存在高噪声水平,也可以显着提高识别的诊断准确性。

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