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A crack detection technique using piezoelectric actuator/sensor systems.

机译:使用压电致动器/传感器系统的裂纹检测技术。

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摘要

For new and aging engineering structures in aerospace and marine industries, implementation of an effective health monitoring system can replace the schedule-based inspection/maintenance of structures by condition-based maintenance. This thesis is focused on the systematic investigation of a structural health monitoring technique for quantitatively identifying embedded cracks in structures. A piezoelectric actuator/sensor system is used to generate high-frequency elastic wave propagation and a reverse wave technique is developed to locate the damage's position, shape and dimension using the obtained sensor signals.; A theoretical model of piezoelectric actuators surface-bonded to and/or embedded in structures is adopted and developed to describe their electromechanical behavior, and the outgoing wave propagation in the host structure is analytically obtained to understand the effects of the different parameters of the actuator upon the resulting wave field. For a surface bonded actuator, only the deformation along the longitudinal direction is considered due to the free surface. However, for an embedded actuator, a model involving the deformation in both the transverse and longitudinal directions of the actuators is developed. The single actuator solution is then implemented into the Pseudo-Incident Wave (PsIW) method to study the wave propagation induced by multiple actuators. When the outgoing wave reaches the surface of existing damages, the scattering wave propagation will be generated, which is recorded as sensor signals. A one-dimensional sensor model is then used, from which received strain field can be determined by using voltage output of the sensor.; The second part of this thesis is to develop a new and innovative technique to interpret the obtained sensor signals to quantitatively locate the cracks in the structures. A reverse wave technique is developed to form the image of the cracks by "moving" the recorded sensor signals to their actual spatial locations. To achieve this, the obtained wave signals are used as boundary conditions to induce reversed elastic wave propagation, from which the sizes, shapes and positions of existing cracks can be determined through the developed imaging technique for both the harmonic wave and transient wave cases. The main advantage of this technique is that complicated mode conversion phenomena caused by the crack reflection and wave propagation distortions in the medium are corrected by the back propagation operation; which made this method favorable for detection of multiple cracks of various shapes.
机译:对于航空航天和海洋工业中新的和老化的工程结构,实施有效的健康监控系统可以通过基于状态的维护代替基于计划的结构检查/维护。本文的重点是对结构健康监测技术进行系统研究,以定量地识别结构中的嵌入裂缝。压电致动器/传感器系统用于产生高频弹性波传播,并开发了一种反向波技术,利用获得的传感器信号来定位损伤的位置,形状和尺寸。采用并发展了表面结合和/或嵌入结构中的压电致动器的理论模型来描述其机电行为,并通过解析获得主体结构中的输出波传播,以了解致动器不同参数对结构的影响。产生的波场。对于表面结合的致动器,由于自由表面,仅考虑沿纵向的变形。然而,对于嵌入式致动器,开发了涉及致动器的横向和纵向方向上的变形的模型。然后将单个执行器解决方案实施到伪事件波(PsIW)方法中,以研究由多个执行器引起的波传播。当传出的波到达存在损害的表面时,将产生散射波传播,并将其记录为传感器信号。然后使用一维传感器模型,可以通过使用传感器的电压输出来确定接收到的应变场。本文的第二部分是开发一种新的创新技术来解释获得的传感器信号,以定量地确定结构中的裂缝。通过将记录的传感器信号“移动”到它们的实际空间位置,开发了一种反向波技术来形成裂缝的图像。为此,将获得的波信号用作边界条件以诱导反向弹性波传播,由此,可以通过开发的成像技术针对谐波和瞬态情况确定存在的裂纹的大小,形状和位置。该技术的主要优点是可以通过反向传播操作纠正由裂纹反射和介质中的波传播畸变引起的复杂模式转换现象。这使得该方法适合于检测各种形状的多个裂缝。

著录项

  • 作者

    Huang, Guoliang.;

  • 作者单位

    University of Alberta (Canada).;

  • 授予单位 University of Alberta (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 185 p.
  • 总页数 185
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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