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减轻可变运行环境对用于长期结构健康监测的压电换能器影响的方法综述

A Review of Approaches for Mitigating Effects from Variable Operational Environments on Piezoelectric Transducers for Long-Term Structural Health Monitoring.

作者信息

Brunner Andreas J

机构信息

Laboratory for Mechanical Systems Engineering, Empa, Swiss Federal Laboratories for Materials Science and Technology, CH-8066 Dübendorf, Switzerland.

出版信息

Sensors (Basel). 2023 Sep 19;23(18):7979. doi: 10.3390/s23187979.

Abstract

Extending the service life of ageing infrastructure, transportation structures, and processing and manufacturing plants in an era of limited resources has spurred extensive research and development in structural health monitoring systems and their integration. Even though piezoelectric transducers are not the only sensor technology for SHM, they are widely used for data acquisition from, e.g., wave-based or vibrational non-destructive test methods such as ultrasonic guided waves, acoustic emission, electromechanical impedance, vibration monitoring or modal analysis, but also provide electric power via local energy harvesting for equipment operation. Operational environments include mechanical loads, e.g., stress induced deformations and vibrations, but also stochastic events, such as impact of foreign objects, temperature and humidity changes (e.g., daily and seasonal or process-dependent), and electromagnetic interference. All operator actions, correct or erroneous, as well as unintentional interference by unauthorized people, vandalism, or even cyber-attacks, may affect the performance of the transducers. In nuclear power plants, as well as in aerospace, structures and health monitoring systems are exposed to high-energy electromagnetic or particle radiation or (micro-)meteorite impact. Even if environmental effects are not detrimental for the transducers, they may induce large amounts of non-relevant signals, i.e., coming from sources not related to changes in structural integrity. Selected issues discussed comprise the durability of piezoelectric transducers, and of their coupling and mounting, but also detection and elimination of non-relevant signals and signal de-noising. For long-term service, developing concepts for maintenance and repair, or designing robust or redundant SHM systems, are of importance for the reliable long-term operation of transducers for structural health monitoring.

摘要

在资源有限的时代,延长老化基础设施、交通结构以及加工制造工厂的使用寿命,这推动了结构健康监测系统及其集成方面的广泛研发。尽管压电传感器并非结构健康监测的唯一传感技术,但它们被广泛用于从基于波或振动的无损检测方法(如超声导波、声发射、机电阻抗、振动监测或模态分析)中采集数据,而且还能通过局部能量收集为设备运行提供电力。运行环境包括机械载荷,例如应力引起的变形和振动,也包括随机事件,如异物撞击、温度和湿度变化(例如每日、季节性或与工艺相关的变化)以及电磁干扰。所有操作人员的操作,无论正确与否,以及未经授权人员的无意干扰、故意破坏甚至网络攻击,都可能影响传感器的性能。在核电站以及航空航天领域,结构和健康监测系统会受到高能电磁或粒子辐射或(微)陨石撞击的影响。即使环境影响对传感器无害,它们也可能会产生大量无关信号,即来自与结构完整性变化无关的源的信号。所讨论的选定问题包括压电传感器及其耦合和安装的耐久性,以及无关信号的检测与消除和信号去噪。对于长期运行而言,制定维护和维修概念,或设计坚固或冗余的结构健康监测系统,对于用于结构健康监测的传感器的可靠长期运行至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1838/10534628/3addc619b571/sensors-23-07979-g002.jpg

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