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Influence of porosity on ultrasonic wave velocity, attenuation and interlaminar interface echoes in composite laminates: Finite element simulations and measurements

机译:孔隙率对复合材料层压板中超声波速度,衰减和层间界面回波的影响:有限元模拟和测量

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The influence of porosity on the ultrasonic wave propagation in unidirectional carbon-fiber-reinforced composite laminates is investigated based on the two-dimensional finite element analysis and measurements. Random distributions of pores with different contents and size are considered in the analysis, together with the effects of viscoelastic plies and interlaminar resin-rich regions. The transient reflection waveforms are calculated from the frequency-domain finite-element solutions by the inverse Fourier transform. As the measures for porosity characterization, the ultrasonic wave velocity, attenuation coefficient, and interlaminar interface echo characteristics are examined for 24-ply unidirectional composite laminates. As a result, the wave velocity decreases with the porosity content in a manner insensitive to the pore size. On the other hand, the attenuation coefficient increases both with the porosity content and with the pore size. The time-frequency analysis of the reflection waveforms shows that the temporal decay rate of interlaminar interface echoes at the stop-band frequency is a good indicator of the porosity content. The measured porosity-content dependence of the wave velocity is better reproduced by the numerical simulations when the interlayer interfacial stiffnesses are adjusted according to the porosity content, indicating that not only the porosity features but also the interlaminar interfacial properties vary with curing conditions. (C) 2016 Elsevier Ltd. All rights reserved.
机译:基于二维有限元分析和测量,研究了孔隙率对单向碳纤维增强复合材料层压板中超声波传播的影响。分析中考虑了具有不同含量和大小的孔的随机分布,以及粘弹性层和层间树脂富集区域的影响。通过逆傅立叶变换从频域有限元解中计算出瞬态反射波形。作为表征孔隙度的方法,对24层单向复合材料层压板的超声波速度,衰减系数和层间界面回波特性进行了研究。结果,波速以对孔隙尺寸不敏感的方式随孔隙率的降低而降低。另一方面,衰减系数随孔隙率含量和孔径的增加而增加。反射波形的时频分析表明,层间界面回波在阻带频率处的时间衰减率是孔隙率的良好指标。当根据孔隙度含量调整层间界面刚度时,通过数值模拟可以更好地再现所测得的波速与孔隙度的关系,表明不仅孔隙度特征而且层间界面性质也随固化条件而变化。 (C)2016 Elsevier Ltd.保留所有权利。

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