基于压电耦合结构特征的铁路轨道热失稳早期检测

Tathagata Banerjee, Sumedha Moharana, Lukesh Parida
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引用次数: 0

摘要

由于轨道牵引和环境热变化引起的轨道高温应力引起的反复热变化,轨道脱轨引起的铁路事故日益受到关注。这将导致热屈曲,从而导致灾难性的破坏。利用机电阻抗(EMI)技术进行结构健康监测(SHM)已成为一种很有前途的技术,可以在结构恶化及其严重程度导致失效之前进行检测。本研究利用压电传感器采集不同轨道连接杆的高温重复热循环压电耦合结构特征,然后使用阻抗分析仪对其进行分析。结果表明,压电耦合特征可以识别结构变化,损伤度量可以用于连续监测由于过热应力和残余应变引起的结构钢轨缺陷。该方法还推导出了压电等效结构参数,如质量、刚度和阻尼,在检测显著变化和随之而来的损伤方面非常令人满意。总体而言,本研究提出了一种先发制人的实验方法,可以看到钢轨和钢轨接头的热劣化和失稳,从而降低脱轨造成的轨道事故风险。
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Early detection of thermal instability in railway tracks using piezo-coupled structural signatures

Rail accidents caused by rail track derailments have been a growing concern due to repetitive thermal changes resulting from high temperature stresses in rails due to rail traction and environmental thermal variation. This leads to thermal buckling, which can result in catastrophic failure. Structural health monitoring (SHM) using the electromechanical impedance (EMI) technique has emerged as a promising technology to detect structural deterioration and its severity before it leads to failure. This study used piezoelectric sensors to collect piezo-coupled structural signatures of different rail-joint bars for high-temperature repetitive thermal cycles, which were then analyzed using an impedance analyzer. The results show that the piezo-coupled signatures could identify structural changes, and the damage metric, could be employed for continuous monitoring of structural rail defects due to excessive thermal stress and residual strain. The method also derived piezo-equivalent structural parameters, such as mass, stiffness, and damping, which were very satisfactory in detecting significant changes and consequent damage. Overall, this study presents a pre-emptive experimental method that can see thermal deterioration and instability in rails and rail joints, thereby reducing the risk of rail accidents caused by derailments.

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