IEEE Trans Ultrason Ferroelectr Freq Control. 2021 Aug;68(8):2733-2740. doi: 10.1109/TUFFC.2021.3073131. Epub 2021 Jul 26.
Advancements in the structural health monitoring (SHM) technology of composite materials are of paramount importance for early detection of critical damage. In this work, direct-write transducers (DWTs) were designed for the excitation and reception of selective ultrasonic guided waves and fabricated by spraying 25- [Formula: see text]-thick piezoelectric poly(vinylidene fluoride-co-trifluoroethylene) [P(VDF-TRFE)] coating with a comb-shaped electrode on carbon fiber-reinforced polymer (CFRP) plates. The characteristics and performance of the ultrasonic DWTs were benchmarked with the state-of-the-art devices, discrete lead zirconate titanate (PZT) ceramic transducers surface-mounted on the same CFRP plates. The DWTs exhibited improved Lamb wave mode excitation (A or S mode) relative to the discrete PZT transducers. Moreover, high signal-to-noise ratio was obtained by effectively canceling other modes and enhancing the directivity with the periodic comb-shaped electrode design of the DWTs, despite the smaller signal amplitudes. The enhanced directivity overcompensates for lower amplitude attenuation, making DWT a good candidate for locally monitoring critical stress hot spot regions in the CFRP structure prone to early damage initiation. It is shown that pairing a DWT sensor with a discrete PZT actuator could further achieve balanced performance in both wave mode selection and signal amplitudes, making this combination really attractive for ultrasonic SHM.
复合材料结构健康监测 (SHM) 技术的进步对于早期检测关键损伤至关重要。在这项工作中,设计了直接写入换能器 (DWT),用于选择性超声导波的激励和接收,并通过在碳纤维增强聚合物 (CFRP) 板上喷涂 25-μm 厚的具有梳状电极的压电聚偏二氟乙烯-三氟乙烯共聚物 [P(VDF-TRFE)] 涂层来制造。将超声 DWT 的特性和性能与最先进的设备进行了基准测试,这些设备是离散的、安装在相同 CFRP 板上的锆钛酸铅 (PZT) 陶瓷换能器。与离散的 PZT 换能器相比,DWT 表现出了改进的兰姆波模式激励 (A 或 S 模式)。此外,通过有效消除其他模式并利用 DWT 的周期性梳状电极设计增强指向性,即使信号幅度较小,也可以获得高信噪比。增强的指向性可以弥补较低的幅度衰减,使 DWT 成为监测容易发生早期损伤的 CFRP 结构中关键应力热点区域的良好候选方案。结果表明,将 DWT 传感器与离散的 PZT 换能器配对可以在波模式选择和信号幅度方面实现更平衡的性能,因此这种组合对于超声 SHM 非常有吸引力。