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体积损伤参数对基于贴片天线传感器的金属结构损伤检测的影响

Influence of Volumetric Damage Parameters on Patch Antenna Sensor-Based Damage Detection of Metallic Structure.

作者信息

Liu Zhiping, Yu Hanjin, Zhou Kai, Li Runfa, Guo Qian

机构信息

School of Logistic Engineering, Wuhan University of Technology, 1178 Heping Ave, Wuhan 430063, China.

Engineer Research Center of Logistic Technology and Equipment, Ministry of Education, Wuhan 430063, China.

出版信息

Sensors (Basel). 2019 Jul 23;19(14):3232. doi: 10.3390/s19143232.

Abstract

Antenna sensors have been employed for crack monitoring of metallic materials. Existing studies have mainly focused on the mathematical relationship between the surface crack length of metallic material and the resonant frequency. The influence of the crack depth on the sensor output and the difference of whether the crack is depth-penetrated remains unexplored. Therefore, in this work, a numerical simulation method was used to investigate the current density distribution characteristics of the ground plane (metallic material) with different crack geometric parameters. The data reveals that, compared with the crack length, the crack depth has a greater influence on the resonant frequency. The relationship between the frequency and the crack geometric parameters was discussed by characterizing the current density and sensor output under different crack lengths and depths. Therefore, the feasibility of monitoring another common damage of metallic materials, i.e., corrosion pit, was explored. Furthermore, the influences of crack and corrosion pit geometric parameters on the output results were validated by experiments.

摘要

天线传感器已被用于金属材料的裂纹监测。现有研究主要集中在金属材料表面裂纹长度与共振频率之间的数学关系。裂纹深度对传感器输出的影响以及裂纹是否深度穿透的差异尚未得到探索。因此,在这项工作中,采用数值模拟方法研究了具有不同裂纹几何参数的接地平面(金属材料)的电流密度分布特性。数据表明,与裂纹长度相比,裂纹深度对共振频率的影响更大。通过表征不同裂纹长度和深度下的电流密度和传感器输出,讨论了频率与裂纹几何参数之间的关系。因此,探索了监测金属材料另一种常见损伤即腐蚀坑的可行性。此外,通过实验验证了裂纹和腐蚀坑几何参数对输出结果的影响。

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