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Radome health management based on synthesized impact detection, laser ultrasonic spectral imaging, and wavelet-trans formed ultrasonic propagation imaging methods

机译:基于综合撞击检测,激光超声光谱成像和小波变换的超声传播成像方法的天线罩健康管理

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摘要

A radome must not only withstand various forces during operation, but also provide a window for electromagnetic signals. A radome is generally a composite sandwich structure. Much of the damage to radomes is barely visible to the naked eye on the outer surface, but is severe internally. In this study, a radome health management strategy consisting of in-flight damage event detection and ground damage evaluation processes is proposed. A radome health management system, composed of an on-board subsystem and a ground subsystem, was developed to realize the strategy. An in-flight event detection system was developed based on acoustic emission (AE) technology. A built-in amplifier-integrated PZT sensor was used, and the minimum impact energy that the on-board subsystem can detect was determined. The AE sensor was then switched to an ultrasonic receiver. A scanning laser ultrasonic technology was combined with the ultrasonic receiver to develop a ground nondestructive evaluation subsystem. For in situ damage visualization, laser ultrasonic frequency tomography and wavelet-transformed ultrasonic propagation imaging algorithms were developed in this study. To demonstrate the robustness of the ground subsystem, a damage was generated by 5.42 J impact in a glass/epoxy radome with honeycomb core, and the impact image of 25 mm in diameter invisible outside could be visualized with the combination of ultrasonic spectral imaging (US1) and wavelet-transformed ultrasonic propagation imaging (WUPI), which made the propagation of only the damage-related ultrasonic modes visible.
机译:天线罩不仅必须在操作过程中承受各种力,而且还应提供电磁信号的窗口。天线罩通常是复合夹心结构。用肉眼几乎看不到天线罩的大部分损坏,但是内部严重。在这项研究中,提出了一种由飞行中损害事件检测和地面损害评估过程组成的天线罩健康管理策略。开发了由车载子系统和地面子系统组成的雷达罩健康管理系统以实现该策略。基于声发射(AE)技术开发了一种机上事件检测系统。使用了内置放大器集成的PZT传感器,并确定了车载子系统可以检测到的最小撞击能量。然后将AE传感器切换到超声接收器。将扫描激光超声技术与超声接收器相结合,以开发地面无损评估子系统。为了进行现场损伤可视化,本研究开发了激光超声频率层析成像和小波变换的超声传播成像算法。为了证明地面子系统的鲁棒性,在带有蜂窝芯的玻璃/环氧树脂天线罩中,5.42 J的撞击产生了损坏,并且可以通过超声光谱成像(US1 )和小波变换的超声传播成像(WUPI),从而仅显示与损伤相关的超声模式的传播。

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