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The Feature Recognition of CFRP Subsurface Defects Using Low-Energy Chirp-Pulsed Radar Thermography

机译:使用低能量啁啾脉冲雷达热成像的CFRP地下缺陷的特征识别

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In this article, a low-energy chirp-pulsed radar thermography (CP-RT) is used to detect the subsurface delamination of carbon fiber reinforced polymer (CFRP) composite as nondestructive testing and evaluation (NDT&E) techniques. The CFRP specimen with artificial flat-bottom holes (FBHs) is prepared for NDTandE by chirp-pulsed radar thermography. Two lasers are employed to be external excitation heat sources. The laser intensities are modulated according to a chirp-pulsed radar signal that combines linear frequency modulation and pulse excitation, and the temperature rise is controlled within 2 degrees C in the experiment. The thermal-wave response signal is processed by a series of different postprocessing characteristic extraction algorithms. These algorithms include time-frequency algorithms [crosscorrelation algorithm (CC), fast Fourier transform (FFT), and dual-orthogonal demodulation algorithm (DOD)] and statistical analysis approaches [principal component analysis (PCA) and PCA-based reconstructed independent component analysis (PCA-RICA)]. The signal-to-noise ratio (SNR) of defects is employed to evaluate the defect detectability for different size defects by different postprocessing algorithms. A three-dimensional (3-D) tomography method based on the FFT phase characteristic is proposed. A truncated-correlation photothermal tomography based on DOD is also introduced to enable the 3-D tomography of CFRP specimen. The FFT phase presents a relatively high SNR and has good correlation with the depth of the defect. The FFT-based CP-RT has the potential to provide a rapid NDT&E and 3-D tomography approach for CFRP with subsurface defects under the low-energy excitation condition.
机译:在本文中,使用低能量啁啾脉冲雷达热成像(CP-RT)来检测碳纤维增强聚合物(CFRP)复合材料的地下分层作为非破坏性测试和评估(NDT&E)技术。具有人造平底孔(FBHS)的CFRP样品通过啁啾脉冲雷达热成像制备Ndtande。使用两个激光器是外部激发热源。根据啁啾脉冲雷达信号调制激光强度,该啁啾脉冲雷达信号组合线性频率调制和脉冲激励,并且在实验中的2摄氏度内控制温度升高。通过一系列不同的后处理特性提取算法处理热波响应信号。这些算法包括时间频率算法[跨相关算法(CC),快速傅里叶变换(FFT)和双正交解调算法(DOD)]和统计分析方法[主成分分析(PCA)和基于PCA的重建独立分量分析(PCA-RICA)]。缺陷的信噪比(SNR)用于评估不同后处理算法的不同尺寸缺陷的缺陷可检测性。提出了一种基于FFT相特性的三维(3-D)断层扫描方法。还引入了基于国防部的截断 - 相关的光热断层扫描,以实现CFRP标本的三维断层扫描。 FFT相提出了相对高的SNR并且与缺陷的深度具有良好的相关性。基于FFT的CP-RT有可能在低能量激励条件下提供具有地下缺陷的CFRP的快速NDT&E和3-D层析方法。

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