Adams Maarten, Huijer Arnaud, Kassapoglou Christos, Vaders Johannes A A, Pahlavan Lotfollah
Department of Maritime and Transport Technology, Delft University of Technology, Mekelweg 2, 2628 CD Delft, The Netherlands.
Department of Aerospace Structures and Materials, Delft University of Technology, Kluyverweg 1, 2629 HS Delft, The Netherlands.
Sensors (Basel). 2024 Apr 25;24(9):2747. doi: 10.3390/s24092747.
The multimodal and dispersive character of ultrasonic guided waves (UGW) offers the potential for non-destructive evaluation of fiber-reinforced composite (FRC) materials. In this study, a methodology for in situ stiffness assessment of FRCs using UGWs is introduced. The proposed methodology involves a comparison between measured wave speeds of the fundamental symmetric and antisymmetric guided wave modes with a pre-established dataset of UGW speeds and translation of them to corresponding stiffness properties, i.e., ABD-components, in an inverse manner. The dispersion relations of guided waves have been calculated using the semi-analytical finite element method. First, the performance of the proposed methodology has been assessed numerically. It has been demonstrated that each of the independent ABD-components of the considered laminate can be approximated with an error lower than 10.4% compared to its actual value. The extensional and bending stiffness properties can be approximated within an average error of 3.6% and 9.0%, respectively. Secondly, the performance of the proposed methodology has been assessed experimentally. This experimental assessment has been performed on a glass fiber-reinforced composite plate and the results were compared to mechanical tensile and four-point bending tests on coupons cut from the plate. Larger differences between the estimated ABD-components according to UGW and mechanical testing were observed. These differences were partly attributed to the variation in material properties across the test plate and the averaging of properties over the measurement area.
超声导波(UGW)的多模态和色散特性为纤维增强复合材料(FRC)的无损评估提供了潜力。在本研究中,介绍了一种使用UGW对FRC进行原位刚度评估的方法。所提出的方法包括将基本对称和反对称导波模式的实测波速与预先建立的UGW速度数据集进行比较,并以相反的方式将它们转换为相应的刚度特性,即ABD分量。使用半解析有限元法计算了导波的色散关系。首先,对所提出的方法的性能进行了数值评估。结果表明,与实际值相比,所考虑层压板的每个独立ABD分量的近似误差均低于10.4%。拉伸和弯曲刚度特性的近似平均误差分别为3.6%和9.0%。其次,对所提出的方法的性能进行了实验评估。该实验评估是在玻璃纤维增强复合材料板上进行的,并将结果与从该板上切割的试样的机械拉伸和四点弯曲试验进行了比较。观察到根据UGW估计的ABD分量与机械测试之间存在较大差异。这些差异部分归因于测试板上材料性能的变化以及测量区域内性能的平均化。