首页> 外文会议>ASME conference on smart materials, adaptive structures and intelligent systems;SMASIS2011 >DAMAGE LOCALIZATION IN COMPLEX COMPOSITE PANELS USING GUIDED WAVE BASED STRUCTURAL HEALTH MONITORING SYSTEM
【24h】

DAMAGE LOCALIZATION IN COMPLEX COMPOSITE PANELS USING GUIDED WAVE BASED STRUCTURAL HEALTH MONITORING SYSTEM

机译:基于导波结构健康监测系统的复合材料复合材料损伤定位

获取原文

摘要

Knowledge of the damage location in composite structures is a necessary output for both Non-Destructive Evaluation (NDE) and Structural Health Monitoring (SHM). Although several damage localization approaches using a triangulation method and Time-of-Flight (ToF) of guided waves have been reported in literature, the damage localization technique is still not mature for composite structures with complex material properties, varying thickness and complex geometries. This paper investigates the development of a new approach for SHM and damage localization using a guided wave based active sensing system. In contrast to the traditional ellipse method, the proposed method does not require the information of structural thickness, ToF, or the estimation of group velocities of each guided wave mode at different propagation angles, which is one of the main limitations of most current ToF methodologies involving composites. This approach uses time-frequency analysis to calculate the difference of the ToF of the converted modes for each sensor signal. The damage location and the group velocity are obtained by solving a set of nonlinear equations. The proposed method can be used for composite structures with unknown lay-up and thickness. To validate the proposed method, experiments were conducted on both composite plates and stiffened composite panels. Eight piezoelectric (PZT) transducers were surface-bonded on each composite specimen and used in four pairs. The PZT transducers in each pair were bonded close to each other. In the PZT array, one PZT transducer from one PZT pair was used as the actuator and the other three pairs were used as sensors. A windowed cosine signal was used as the excitation signal. The locations of the delaminations in the composite specimens were validated using a flash thermography system. The accuracy of the proposed method in localizing delaminations was examined through comparison with the experimental measurements.
机译:对于无损评估(NDE)和结构健康监测(SHM)而言,了解复合结构中的损坏位置是必不可少的输出。尽管文献中已经报道了几种使用三角测量法和导波飞行时间(ToF)的损伤定位方法,但是对于具有复杂材料特性,厚度变化和复杂几何形状的复合结构,损伤定位技术仍不成熟。本文研究了使用基于导波的主动传感系统进行SHM和损伤定位的新方法的发展。与传统的椭圆法相反,该方法不需要结构厚度,ToF信息或在不同传播角度下每个导波模式的群速度的估计,这是当前大多数ToF方法的主要局限之一。涉及复合材料。该方法使用时频分析来计算每个传感器信号的转换模式的ToF差。损伤位置和群速度是通过求解一组非线性方程获得的。所提出的方法可以用于具有未知层数和厚度的复合结构。为了验证所提出的方法,对复合板和刚性复合板均进行了实验。将八个压电(PZT)换能器表面粘合在每个复合样品上,并以四对使用。每对中的PZT换能器彼此紧密结合。在PZT阵列中,一对PZT传感器中的一个PZT传感器用作致动器,其他三对传感器用作传感器。窗口余弦信号用作激励信号。使用快速热成像系统验证了复合材料样本中分层的位置。通过与实验测量结果的比较,检验了所提出方法在分层中的准确性。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号