Overview of Piezoelectric Impedance-Based Health Monitoring and Path Forward

G. Park, H. Sohn, C. Farrar, D. Inman
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引用次数: 1091

Abstract

In this paper we summarize the hardware and software issues of impedance-based structural health moni- toring based on piezoelectric materials. The basic concept of the method is to use high-frequency structural excitations to monitor the local area of a structure for changes in structural impedance that would indicate imminent damage. A brief overview of research work on experimental and theoretical stud- ies on various structures is considered and several research papers on these topics are cited. This paper concludes with a discussion of future research areas and path forward. Piezoelectric materials acting in the "direct" manner pro- duce an electrical charge when stressed mechanically. Con- versely, a mechanical strain is produced when an electrical field is applied. The direct piezoelectric effect has often been used in sensors such as piezoelectric accelerometers. With the converse effect, piezoelectric materials apply local- ized strains and directly influence the dynamic response of the structural elements when either embedded or surface bonded into a structure. Piezoelectric materials have been widely used in structural dynamics applications because they are lightweight, robust, inexpensive, and come in a variety of forms ranging from thin rectangular patches to complex shapes being used in microelectromechanical systems (MEMS) fabrications. The applications of piezoelectric mate- rials in structural dynamics are too numerous to mention and are detailed in the literature (Niezrecki et al., 2001; Chopra, 2002). The purpose of this paper is to explore the importance and effectiveness of impedance-based structural health mon- itoring from both hardware and software standpoints. Imped- ance-based structural health monitoring techniques have been developed as a promising tool for real-time structural dam- age assessment, and are considered as a new non-destructive evaluation (NDE) method. A key aspect of impedance-based structural health monitoring is the use of piezoceramic (PZT) materials as collocated sensors and actuators. The basis of this active sensing technology is the energy transfer between the actuator and its host mechanical system. It has been shown that the electrical impedance of the PZT material can be directly related to the mechanical impedance of a host structural component where the PZT patch is attached. Uti- lizing the same material for both actuation and sensing not only reduces the number of sensors and actuators, but also reduces the electrical wiring and associated hardware. Fur- thermore, the size and weight of the PZT patch are negligible compared to those of the host structures so that its attach- ment to the structure introduces no impact on dynamic char- acteristics of the structure. A typical deployment of a PZT on a structure being monitored is shown in Figure 1. The first part of this paper (Sections 2 and 3) deals with the theoretical background and design considerations of the impedance-based structural health monitoring. The signal processing of the impedance method is outlined in Section 4. In Section 5, experimental studies using the impedance approaches are summarized and related previous works are listed. Section 6 presents a brief comparison of the imped- ance method with other NDE approaches and, finally, sev- eral future issues are outlined in Section 7. 2. Theoretical Background
基于压电阻抗的健康监测综述及发展方向
本文综述了基于压电材料的基于阻抗的结构健康监测的硬件和软件问题。该方法的基本概念是使用高频结构激励来监测结构局部区域的结构阻抗变化,以表明即将发生的损伤。简要概述了各种结构的实验和理论研究工作,并引用了几篇有关这些主题的研究论文。最后,对今后的研究方向和发展方向进行了展望。以“直接”方式作用的压电材料在机械受力时产生电荷。相反,当施加电场时,会产生机械应变。直接压电效应常用于压电加速度计等传感器中。相反,压电材料施加局部应变,直接影响结构单元嵌入或表面粘结时的动力响应。压电材料由于其重量轻、坚固耐用、价格低廉,并且具有多种形式,从薄矩形片到用于微机电系统(MEMS)制造的复杂形状,已广泛应用于结构动力学应用。压电材料在结构动力学中的应用不胜枚举,在文献中有详细介绍(Niezrecki et al., 2001;Chopra, 2002)。本文的目的是从硬件和软件两个角度探讨基于阻抗的结构健康监测的重要性和有效性。基于冲击的结构健康监测技术是一种很有前途的实时结构坝龄评估工具,被认为是一种新的无损评估方法。基于阻抗的结构健康监测的一个关键方面是使用压电陶瓷(PZT)材料作为配置传感器和致动器。这种主动传感技术的基础是执行器与其主机机械系统之间的能量传递。研究表明,PZT材料的电阻抗可以直接与附着PZT贴片的主体结构部件的机械阻抗相关。在致动和传感中使用相同的材料不仅减少了传感器和致动器的数量,而且还减少了电线和相关的硬件。此外,与宿主结构相比,PZT贴片的尺寸和重量可以忽略不计,因此其附着在结构上不会对结构的动态特性产生影响。PZT在被监视的结构上的典型部署如图1所示。本文的第一部分(第2节和第3节)讨论了基于阻抗的结构健康监测的理论背景和设计考虑。阻抗法的信号处理在第4节中进行了概述。在第5节中,总结了使用阻抗方法的实验研究,并列出了相关的先前工作。第6节简要比较了阻抗法与其他无损检测方法,最后,第7节概述了未来的几个问题。2. 理论背景
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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