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首页> 外文期刊>Research in nondestructive evaluation: a journal of the American Society for Nondestructive Testing >ELECTRO-MECHANICAL IMPEDANCE (EMI)-BASED INCIPIENT CRACK MONITORING AND CRITICAL CRACK IDENTIFICATION OF BEAM STRUCTURES
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ELECTRO-MECHANICAL IMPEDANCE (EMI)-BASED INCIPIENT CRACK MONITORING AND CRITICAL CRACK IDENTIFICATION OF BEAM STRUCTURES

机译:基于机电阻抗(EMI)的裂纹裂纹监测和临界裂纹识别

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摘要

Fatigue-induced damage is often progressive and gradual in nature. Fatigue is often deteriorated by corrosion in ageing structures, creating maintenance problems, and even causing catastrophic failure. This ushers the development of structural health monitoring (SHM) and nondestructive evaluation (NDE) systems. Recent advent of smart materials applicable in SHM alleviates the shortcomings of the conventional techniques. Autonomous, real-time, remote monitoring becomes possible with the use of smart piezoelectric transducers. For instance, the electro-mechanical impedance (EMI) technique, employing piezoelectric transducers as collocated actuators and sensors, is known for its ability in damage detection and characterization. This article presents a series of lab-scale experimental tests and analysis to investigate the feasibility of fatigue crack detection and characterization employing the EMI technique. This study extends the work by Lim and Soh [I] to incorporate the phases involving crack initiation and critical crack. It is suggested that the EMI technique is effective in characterizing fatigue induced cracking, even in its incipient stage. Micro-crack invisible to the naked eyes can be detected by the technique especially when employing the higher frequency range of 100-200 kHz. A quick and handy qualitative-based critical crack identification method is also suggested by visually inspecting the admittance frequency spectrum.
机译:疲劳引起的损害通常是渐进的和渐进的。疲劳通常会因老化结构中的腐蚀而恶化,造成维护问题,甚至导致灾难性故障。这催促了结构健康监测(SHM)和无损评估(NDE)系统的开发。适用于SHM的智能材料的最新出现减轻了常规技术的缺点。通过使用智能压电传感器,可以进行实时,实时的远程监控。例如,采用压电换能器作为并置的致动器和传感器的机电阻抗(EMI)技术因其在损伤检测和表征中的能力而闻名。本文介绍了一系列实验室规模的实验测试和分析,以研究采用EMI技术进行疲劳裂纹检测和表征的可行性。这项研究扩展了Lim和Soh [I]的工作,以纳入涉及裂纹萌生和临界裂纹的阶段。有人认为,即使在初期阶段,EMI技术也可以有效地表征疲劳引起的裂纹。用这种技术可以检测到肉眼看不到的微裂纹,特别是在采用100-200 kHz的较高频率范围时。通过目视检查导纳频谱,还提出了一种基于定性的快速便捷的临界裂纹识别方法。

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