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A high-sensitivity and long-distance structural health monitoring system based on bidirectional SH wave phased array

机译:基于双向SH波相控阵的高灵敏度和长距离结构健康监测系统

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摘要

When estimating a structural health monitoring (SHM) system, its defect sensitivity and area/distance coverage are most important factors. For commonly used guided wave sparse array system, it usually requires a reference state as the baseline which is not available in many cases. In comparison, phased array technique typically does not need the baseline in simple structures and it had been successfully used in nondestructive testing (NDT). However, currently developed phased array systems employed omni-directional transducers routinely, where the wave energy is distributed equally along all directions thus it is not favorable for long-distance detection. In this work, bidirectional piezoelectric transducers were used to form a linear phased array system, which can generate/receive shear horizontal (SH) wave with high energy concentration. Firstly, the configuration of the employed transducer composed by antiparallel d(15) piezoelectric strips (APS) was presented. Then the total focusing method (TFM) employed for defect detection was introduced. After validating the radiation pattern of SH wave generated by the APS, the properties of beam steering for the proposed phased array was investigated. Finally, experiments were carried out to validate its performance in detection of various defects. Results indicated that even for a 1 mm through-thickness hole 700 mm away, the proposed phased array system can still detect it accurately, which is much better than previous SHM systems. Dual defects including a crack and a hole can also be clearly detected without baseline. The high-sensitivity of the proposed system was attributed to the employed bidirectional transducer which can generate non-dispersive SH0 wave with high energy concentration. This proposed SH wave phased array system will provide a high-performance SHM method for plate-like structures.
机译:当估计结构健康监测(SHM)系统时,其缺陷敏感性和面积/距离覆盖是最重要的因素。对于常用的引导波稀疏阵列系统,它通常需要参考状态作为在许多情况下不可用的基线。相比之下,相控阵技术通常不需要简单的结构中的基线,并且它已成功用于非破坏性测试(NDT)。然而,目前开发的相位阵列系统经常使用全向换能器,其中波能量沿各个方向均等地分布,因此它不利于远程检测。在这项工作中,使用双向压电换能器形成线性相位阵列系统,其可以产生具有高能量浓度的剪切水平(SH)波。首先,提出了由反平行D(15)压电条(APS)组成的采用的换能器的配置。然后引入了用于缺陷检测的总关注方法(TFM)。在验证APS产生的SH波的辐射模式之后,研究了所提出的相控阵列的光束转向的性质。最后,进行了实验以验证其在检测各种缺陷时的性能。结果表明,即使对于1毫米的通孔孔700 mm距离,所提出的相控阵系统仍然可以准确地检测,这比以前的SHM系统好得多。如果没有基线,也可以清楚地检测到包括裂缝和孔的双缺陷。所提出的系统的高灵敏度归因于采用的双向换能器,其可以产生具有高能量浓度的非分散SH0波。这一提出的SH波相控阵系统将为板状结构提供高性能SHM方法。

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