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FEM assisted development of a SHM-piezo-package for damage evaluation in airplane components

机译:FEM协助开发SHM压电封装,用于评估飞机部件中的损坏

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Structural Health Monitoring (SHM) is a wide spread field for material condition observation of differential structure components. At the IZFP the guided wave (Lamb wave) technology is under higher investigation. Actual investigations are in progress to apply SHM-systems at structures in airplanes to perform condition monitoring. New materials like Carbon Fibre Reinforced Plastics (CFRP) will be placed in airplanes partially, because they provide very high stiffness, high rupture strength and reduced total mass. These SHM-systems are using different damage indicators, which are based on differences in amplitude or phase relation between two measured signals at two different times points (condition). Additionally, these signals are affected by environmental loads, sensor setup and changes in material properties of the adhesive layer. A successful material application can only be achieved by using an integrated reliable SHM-system. The validation of reliability comes along with high probability of detection and high robustness regarding environmental loads. This study tests and analyses the robustness of a novel piezo-sensor-package. The sensor package is very slim and consists of LTCC ceramic, which encloses a PZT piezo ceramic sheet and carries electronic components on its surface. Using the piezoelectric effect the package generates lamb waves and transmits them into a base substrate. The package is assembled on a 2 mm (thick) aluminium plate for study purposes, because aluminium possesses an isotropic material behaviour. Frequency ranges from 25 kHz up to 400 kHz produce excited symmetrical S0 and asymmetrical A0 lamb waves that are guided into the aluminium plate. Subsequently, a FEM-model of the package is calibrated to ensure correct physical behaviour of the simulation using analytical solutions of lamb wave propagation and experimental data. The calibration of the FEM-model provides the base for further investigations. The principle of wave propagation based -n-non the new package configuration is studied and effects resulting from the package shape and construction are defined. Also, influences of the adhesive layer between the ceramic package and the aluminium plate are determined as a function of thickness and temperature depended stiffness and for the case of a delaminating progress.
机译:结构健康监测(SHM)是一个广泛的领域,用于观察不同结构部件的材料状况。在IZFP,导波(兰姆波)技术正在接受更高的研究。正在进行实际调查,以将SHM系统应用于飞机的结构以进行状态监视。诸如碳纤维增强塑料(CFRP)之类的新材料将被部分放置在飞机上,因为它们提供了很高的刚度,高的断裂强度和减小的总质量。这些SHM系统使用不同的损坏指标,这些指标基于两个不同时间点(条件)下两个测量信号之间的幅度或相位关系的差异。此外,这些信号还受到环境负荷,传感器设置以及粘合剂层材料特性变化的影响。成功的材料应用只能通过使用集成的可靠SHM系统来实现。可靠性的验证伴随着对环境负荷的高检测概率和高鲁棒性。这项研究测试和分析了新型压电传感器封装的鲁棒性。传感器封装非常纤薄,由LTCC陶瓷组成,该陶瓷封装了PZT压电陶瓷板并在其表面上承载电子元件。利用压电效应,包装产生兰姆波并将其传输到基础基板中。出于研究目的,该包装组装在2毫米(厚)的铝板上,因为铝具有各向同性的材料性能。从25 kHz到400 kHz的频率范围会产生被激发的对称S0和非对称A0兰姆波,它们被导引到铝板上。随后,使用羊羔波传播的解析解和实验数据对包装的FEM模型进行校准,以确保仿真的正确物理行为。 FEM模型的校准为进一步研究提供了基础。研究了基于波传播的原理-n-非新包装结构,并定义了包装形状和构造所产生的效果。而且,取决于厚度和温度相关的刚度以及在分层过程中,确定陶瓷封装和铝板之间的粘合剂层的影响。

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