用于管道安全监测的微波无芯片谐振应变传感器

M. Baghelani, Z. Abbasi, M. Daneshmand
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引用次数: 0

摘要

环向应变的实时监测是评价管道安全性和完整性的重要参数。内部腐蚀及其引起的壁厚变化直接反映在环向应变变化中。此外,由于负压波的作用,泄漏引起压降和应变减小。由于其具有极低的成本,相对较高的灵敏度,与恶劣环境条件的兼容性,远距离和非接触式传感的功耗可以忽略不计等有前途的特点,基于微波谐振器的传感器在过去十年中取得了很大的兴趣。本文提出了一种用于管道环箍应变实时监测的无芯片柔性微波传感器。该传感器结构包括附着在管道上的柔性无芯片裂环微波标签谐振器,并与位于距离标签应变传感器一定距离的读取器形成的一对间隙耦合传输线电磁耦合。由于所述管道缺陷导致的应变变化改变了所附标签传感器的总长度,从而导致其共振频率的移位。为了保证标签传感器能够机械地跟随管道的应变变化,其结构材料的杨氏模量应远低于管道的杨氏模量。这个条件对于传感器管道系统的完整性也很重要,因为它们的连接将通过粘合剂完成。由于铜作为标准的微波导电材料的硬度相对较高,因此它不适合用于如此重要的应用。针对这一问题,本工作采用导电橡胶层制作无芯片标签结构,杨氏模量极低,保证标签应变传感器长度准确跟随管道应变变化,形成可靠、精确的管道应变传感器。标签传感器的频谱反映在读取器结构频谱上,可以测量读取器结构频谱,以监测标签传感器长度变化引起的标签共振频移,这与管道应变波动直接相关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microwave Chipless Resonator Strain Sensor for Pipeline Safety Monitoring
Real-time hoop strain monitoring is known as an important parameter for the evaluation of pipeline safety and integrity. Internal corrosion and consequently variation of wall thickness directly reflects in hoop strain variation. In addition, leakage causes a pressure drop and strain reduction due to negative pressure wave. Due to their promising features such as extremely low cost, relatively high sensitivity, compatibility with harsh environmental conditions, distant and non-contact sensing with negligible power consumption, microwave resonator-based sensors achieved great deals of interest during the last decade. In this work, a chipless flexible microwave sensor for pipeline hoop strain real-time monitoring is presented. The sensor structure comprises a flexible chipless split ring microwave tag resonator attached to the pipeline and electromagnetically coupled to a pair of gap coupled transmission lines form the reader located at a certain distance from the tag strain sensor. Strain variations as the results of the mentioned pipeline defects change the overall length of the attached tag sensor which consequently causes a shift in its resonance frequency. For assuring the tag sensor to mechanically follow the strain variation of the pipeline, the Young modulus of its structural material should be much lower than that of the pipeline. This condition also important for the integrity of the sensor-pipe system because their connection will be accomplished by an adhesive. Since copper as the standard microwave conductive material is relatively highly stiff, it is not an appropriate candidate for such an important application. For addressing this issue, the chipless tag structure is fabricated by a conductive rubber layer in this work with extremely low Young modulus guaranteeing the length of the tag strain sensor to exactly follow the strain variation of the pipeline and forms a reliable and precise pipeline strain sensor. The spectrum of the tag sensor is reflected on the reader structure spectrum which could be measured to monitor the resonance frequency shift of the tag resulted from length variation of the tag sensor directly related to the pipeline strain fluctuation.
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