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首页> 外文期刊>Journal of intelligent material systems and structures >Nonlinear ultrasonic inspection of smart carbon fibre reinforced plastic composites with embedded piezoelectric lead zirconate titanate transducers for space applications
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Nonlinear ultrasonic inspection of smart carbon fibre reinforced plastic composites with embedded piezoelectric lead zirconate titanate transducers for space applications

机译:具有嵌入式压电锆钛酸钛酸铅传感器的智能碳纤维增强塑料复合材料的非线性超声检查

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摘要

Carbon fibre reinforced plastic composites used in spacecraft structures are susceptible to delamination, debonds and fibre cracking that may arise during manufacturing, assembly or in-service operations (e.g. caused by debris impacts in near-Earth orbital spaceflights). Therefore, in situ and real-time health monitoring is necessary to avoid time-consuming and unsafe visual inspections performed either on-ground or during extra vehicular activities. In this article, a recently created 'smart' carbon fibre reinforced plastic composite structure with embedded piezoelectric lead zirconate titanate transducers was used to detect multiple areas of artificial delamination and real impact damage of different size using nonlinear ultrasound. The electrical insulation of embedded piezoelectric lead zirconate titanate transducers was achieved by interlacing a dry layer of woven glass fibre fabric between the sensor and the carbon fibre reinforced plastic plies before curing. Damage detection was successfully demonstrated using both second harmonic generation and nonlinear modulation (sidebands) of the measured ultrasonic spectrum. The material nonlinear response at the second harmonic and sidebands frequencies was also measured with a laser Doppler vibrometer to validate the nonlinear ultrasonic tests and provide damage localisation. Experimental results revealed that the proposed configuration of embedded piezoelectric lead zirconate titanate transducers can be utilised for on-board ultrasonic inspection of spacecraft composite parts.
机译:航天器结构中使用的碳纤维增强塑料复合材料易于在制造,组装或使用中的操作过程中发生分层,脱粘和纤维破裂(例如,由近地轨道航天飞行中的碎片撞击所引起)。因此,就地和实时健康监测是必要的,以避免在地面上或在额外的车辆活动期间进行耗时且不安全的目视检查。在本文中,最近使用嵌入式压电锆钛酸钛酸铅传感器创建了一种“智能”碳纤维增强塑料复合结构,用于通过非线性超声检测人工分层和不同大小的实际冲击损伤的多个区域。嵌入式压电锆钛酸铅钛酸盐传感器的电绝缘是通过在固化之前在传感器和碳纤维增强塑料层之间交织一层干燥的玻璃纤维编织织物层来实现的。使用二次谐波产生和所测超声频谱的非线性调制(边带)成功证明了损伤检测。还使用激光多普勒振动计测量了二次谐波和边带频率下的材料非线性响应,以验证非线性超声测试并提供损伤定位。实验结果表明,所建议的嵌入式压电锆钛酸钛酸铅传感器的配置可用于航天器复合部件的车载超声检查。

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