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The effects of air gap reflections during air-coupled leaky Lamb wave inspection of thin plates

机译:薄板空气耦合泄漏兰姆波检查中气隙反射的影响

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Air-coupled ultrasonic inspection using leaky Lamb waves offers attractive possibilities for non-contact testing of plate materials and structures. A common method uses an air-coupled pitch-catch configuration, which comprises a transmitter and a receiver positioned at oblique angles to a thin plate. It is well known that the angle of incidence of the ultrasonic bulk wave in the air can be used to preferentially generate specific Lamb wave modes in the plate in a non-contact manner, depending on the plate dimensions and material properties. Multiple reflections of the ultrasonic waves in the air gap between the transmitter and the plate can produce additional delayed waves entering the plate at angles of incidence that are different to those of the original bulk wave source. Similarly, multiple reflections of the leaky Lamb waves in the air gap between the plate and an inclined receiver may then have different angles of incidence and propagation delays when arriving at the receiver and hence the signal analysis may become complex, potentially leading to confusion in the identification of the wave modes. To obtain a better understanding of the generation, propagation and detection of leaky Lamb waves and the effects of reflected waves within the air gaps, a multiphysics model using finite element methods was established. This model facilitated the visualisation of the propagation of the reflected waves between the transducers and the plate, the subsequent generation of additional Lamb wave signals within the plate itself, their leakage into the adjacent air, and the reflections of the leaky waves in the air gap between the plate and receiver. Multiple simulations were performed to evaluate the propagation and reflection of signals produced at different transducer incidence angles. Experimental measurements in air were in good agreement with simulation, which verified that the multiphysics model can provide a convenient and accurate way to interpret the signals in air-coupled ultrasonic inspection using leaky Lamb waves. (C) 2015 Elsevier B.V. All rights reserved.
机译:使用泄漏兰姆波的空气耦合超声检查为板材和结构的非接触式测试提供了诱人的可能性。一种常见的方法是使用空气耦合的音高-捕获结构,该结构包括与薄板成斜角放置的发射器和接收器。众所周知,取决于板的尺寸和材料特性,空气中超声波体波的入射角可用于优先以非接触方式在板中产生特定的兰姆波模式。超声波在发射器和平板之间的气隙中的多次反射会产生额外的延迟波,这些延迟波以与原始体波源不同的入射角进入平板。类似地,泄漏的兰姆波在板和倾斜的接收器之间的气隙中的多次反射可能会在到达接收器时具有不同的入射角和传播延迟,因此信号分析可能会变得复杂,从而可能导致信号混乱。识别波模。为了更好地了解泄漏的兰姆波的产生,传播和检测以及气隙内反射波的影响,建立了使用有限元方法的多物理场模型。该模型有助于可视化换能器和板之间的反射波传播,板自身内部随后生成的其他兰姆波信号,其泄漏到相邻空气中以及泄​​漏波在气隙中的反射的可视化在板和接收器之间。进行了多次仿真,以评估在不同换能器入射角下产生的信号的传播和反射。空气中的实验测量与仿真结果吻合良好,这证明了多物理场模型可以为使用泄漏兰姆波的空气耦合超声检查中的信号解释提供方便,准确的方法。 (C)2015 Elsevier B.V.保留所有权利。

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