Wang Guoliang, Wang Fulei, Xie Linfang, Wang Dongzhou, Song Wei, Sang Yuanhua, Liu Hong, Zhao Xian, Yu Fapeng
State Key Laboratory of Crystal Materials, Shandong University, Jinan 250100, China.
Jinan Institute of Quantum Technology, Jinan Institute, Jinan 250101, China.
ACS Appl Mater Interfaces. 2024 Sep 11;16(36):47902-47911. doi: 10.1021/acsami.4c09463. Epub 2024 Sep 2.
The application of shear horizontal (SH) guided wave transducers in high-temperature structural health monitoring (SHM) is a topic of significant interest across various industrial engineering sectors. In this study, we utilized the novelty piezoelectric crystal of near stoichiometric lithium niobate (NSLN), which exhibited a robust piezoelectric response ( = 77.6 pC/N@room temperature). Next, the pure thickness shear vibration mode through size optimization was designed. It was demonstrated that the NSLN-based ultrasonic guided wave transducers utilizing the optimum mode were proficient in transmitting and receiving pure fundamental SH wave (SH wave) along two orthogonal main directions (0° and 90°) over a wide frequency range (100-350 kHz), exhibiting strong response to the SH wave. Under the driving voltage of 100 V, the signal voltages of the NSLN-based transducer were found to be on the order of 200.3 and 11.8 mV at room temperature and high temperature of 650 °C, respectively. Moreover, the NSLN-based SH transducer showcased its better defect localization ability, and the signal-to-noise ratio (SNR) sensitivity of NSLN-based transducer was evaluated to be 16.1 dB at high temperature of 650 °C. To sum up, the ultrasonic wave transducer based on NSLN crystal demonstrated higher potential applications for in situ SHM under elevated temperatures.
水平剪切(SH)导波换能器在高温结构健康监测(SHM)中的应用是各个工业工程领域中备受关注的一个话题。在本研究中,我们使用了近化学计量比铌酸锂(NSLN)这种新型压电晶体,它在室温下表现出强大的压电响应(= 77.6 pC/N)。接下来,通过尺寸优化设计了纯厚度剪切振动模式。结果表明,利用最佳模式的基于NSLN的超声导波换能器能够在很宽的频率范围(100 - 350 kHz)内沿两个正交主方向(0°和90°)高效地发射和接收纯基模SH波(SH波),对SH波表现出强烈响应。在100 V的驱动电压下,基于NSLN的换能器在室温以及650 °C高温下的信号电压分别约为200.3 mV和11.8 mV。此外,基于NSLN的SH换能器展示出了更好的缺陷定位能力,在650 °C高温下基于NSLN的换能器的信噪比(SNR)灵敏度评估为16.1 dB。综上所述,基于NSLN晶体的超声波换能器在高温下原位SHM方面展现出了更高的潜在应用价值。