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Design, implementation, and comparison of guided wave phased arrays using embedded piezoelectric wafer active sensors for structural health monitoring

机译:使用嵌入式压电晶片活性传感器进行制导波相控阵列的设计,实现和比较,用于结构健康监测

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Phased array can interrogate large structural areas from a single location using ultrasonic guided waves generated by tuned piezoelectric wafer active sensors that are permanently attached (embedded) to the structure. Various array parameters determine the array beamforming and steering characteristics. This paper aims to bring up several one or two dimension array designs and research on their beamforming properties and damage detection performance through both analytical simulation and laboratory experiments. The paper will firstly present the generic guided wave phased array beamforming formulation and explain how the beamforming characteristics are affected by the array parameters such as number of elements, element spacing, and steering angle. Preliminary work of implementing a one dimensional linear phase array is then followed to exemplify how our embedded ultrasonic structural radar (EUSR) scans and detects damage on the plate structures. However, such a linear array has the limitations that it has limited scanning range due to the beamforming directionality deficiency and it can only scan the 0° ~ 180° range either in front of or behind it, i.e., it can not tell if the damage is in the positive or negative direction in the polar coordinates. Hence, we proposed several improved array designs including: (1) a miniaturized array using smaller PWAS; (2) an array using rectangular PWAS; (3) a cross-shaped two dimensional array; (4) a L-shaped two dimensional array. Extensive simulation work has been done to explore the beamforming and beamsteering properties of those arrays. Laboratory experiments have also been conducted to testify the arrays damage detection abilities. The results show that the miniaturized array can look into larger area and be used for damage detection of compact specimen with complicated geometry. Signal rectangular PWAS has directional rather than omnidirectional beamforming which resulting in improved beamforming of the phased array using such PWAS. Two dimensional arrays show directional beamforming within full range of 0° ~ 360° degrees though having limited working steering angles. We finally end up with discussion and conclusion of the arrays and some expectations for future work.
机译:相控阵可以使用由调谐压电晶片有源传感器产生的超声波引导波从单个位置询问大型结构区域,该波浪永久地连接(嵌入)到结构。各种阵列参数确定阵列波束形成和转向特性。本文旨在通过分析仿真和实验室实验提出几种或两个尺寸阵列设计和研究其波束成形性能和损坏检测性能。本文将首先介绍通用引导波分阶段阵列波束形成配方,并解释波束成形特性如何受阵列参数的影响,例如元件数量,元件间距和转向角。然后遵循实施一维线性相位阵列的初步工作,以举例说明我们的嵌入式超声结构雷达(EUSR)扫描和检测板结构的损坏。然而,这种线性阵列具有由于波束形成方向性缺陷而具有有限的扫描范围的限制,并且只能在其前面或后面扫描0°〜180°范围,即它不能判断损坏在极性坐标中处于正面或负方向。因此,我们提出了几种改进的阵列设计,包括:(1)使用较小的PWA的小型化阵列; (2)使用矩形PWA的阵列; (3)十字形二维阵列; (4)L形二维阵列。已经完成了广泛的仿真工作来探索这些阵列的波束成形和光束工作性。还进行了实验室实验以证明阵列损坏检测能力。结果表明,小型化阵列可以调查更大的区域,并用于损坏具有复杂几何形状的紧凑型样品。信号矩形PWA具有定向而不是全向波束成形,从而导致使用这种PWA的相控阵的改进的波束成形。二维阵列在0°〜360°度的全范围内显示定向波束形成,尽管具有有限的工作转向角。我们终于结束了讨论和结论阵列和未来工作的一些预期。

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