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Health Monitoring Techniques Using Integrated Sensors

机译:使用集成传感器的健康监控技术

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Advanced high performance materials and components such as CFRP, GFRP and Smart Structures require improved testing techniques. The first part of our contribution deals with nonlinear vibrometry as a defect selective non-destructive testing method. This method uses higher harmonics (which are generated only at defects) to locate the defect by scanning across the surface of the sample with a laser interferometer. For input coupling of the elastic wave both an external (like ultrasound welding converters) or internal (integrated piezo actuators) excitation source can be used. The external detection tools are a microphone or a scanning laser vibrometer. With this technique, we characterized Smart Structures made of aerospace materials and composites with embedded piezoelectric actuators. The next part is about health monitoring techniques and diagnostics where integrated elements are used for excitation and detection. Thus, we monitored the transfer function over a large frequency spectrum and especially its changes caused e.g. by defects. Changes in the properties of structures by fatigue, impacts, and thermoplasticity have been successfully observed. Also the changes in reinforced plastics under tensile stress have been monitored. The results were correlated with destructive measurements. For health monitoring we also present the impedance analysis of embedded piezo ceramic sensors. A defect causes changes in the modal response of the hole structure and that effect can be detected using the phase angle of the electric impedance of the piezo element. Additionally some types of defects cause a non-linear behavior of the structure which was verified by extracting higher harmonics as a reaction to sinusoidal single frequency excitation.
机译:先进的高性能材料和组件,例如CFRP,GFRP和Smart Structures,需要改进的测试技术。我们的贡献的第一部分将非线性振动法作为一种缺陷选择性无损检测方法。该方法使用较高的谐波(仅在缺陷处产生),通过用激光干涉仪扫描样品表面来定位缺陷。对于弹性波的输入耦合,可以使用外部(如超声焊接转换器)或内部(集成压电致动器)激励源。外部检测工具是麦克风或扫描激光振动计。通过这项技术,我们表征了由航空航天材料和复合材料制成并带有嵌入式压电致动器的智能结构。下一部分是关于健康监测技术和诊断的,其中集成元素用于激发和检测。因此,我们在较大的频谱上监视了传递函数,尤其是它引起的变化,例如通过缺陷。已经成功地观察到由于疲劳,冲击和热塑性而引起的结构性能变化。还监测了拉伸应力下增强塑料的变化。结果与破坏性测量相关。对于健康监控,我们还介绍了嵌入式压电陶瓷传感器的阻抗分析。缺陷会导致孔结构的模态响应发生变化,并且可以使用压电元件的电阻抗的相角来检测这种影响。另外,某些类型的缺陷会导致结构的非线性行为,这可以通过提取高次谐波作为对正弦单频激励的反应来验证。

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