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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Investigation of inductively coupled ultrasonic transducer system for NDE
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Investigation of inductively coupled ultrasonic transducer system for NDE

机译:无损检测的电感耦合超声换能器系统研究

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Inductive coupling offers a simple solution to wirelessly probe ultrasonic transducers. This paper investigates the theory and feasibility of such an inductively coupled transducer system in the context of nondestructive evaluation (NDE) applications. The noncontact interface is based on electromagnetic coupling between three coils; one of the coils is physically connected to the transducer, the other two are in a separate probing unit, where they are connected to the transmit and receive channels of the instrumentation. The complete system is modeled as a three-port network with the measured impedance of a bonded piezoelectric ceramic disc representing a sensor attached to an arbitrary solid substrate. The developed transmission line model is a function of the physical parameters of the electromagnetic system, such as the number of turns and diameter of each coil, and their separation. This model provides immediate predictions of electrical input impedance and pulse??echo response. The model has been validated experimentally and a sensitivity analysis of the input parameters performed. This has enabled optimization of the various parameters. Inductively coupled transducer systems have been built for both bulk and guided wave examples. By using chirped excitation and baseline subtraction, inspection distance of up to 700 mm is achieved in single-shot, guidedwave pulse??echo mode measurements with a 5 mm separation between the probing coils and transducer coil on an aluminum plate structure. In the bulk wave example, a delamination in an 8.9-mm-thick carbon fiber composite specimen is successfully identified from the changes in the arrival time of a reflected pulse.
机译:电感耦合为无线探测超声换能器提供了一种简单的解决方案。本文研究了在无损评估(NDE)应用中这种电感耦合换能器系统的理论和可行性。非接触式接口基于三个线圈之间的电磁耦合。线圈中的一个物理连接到换能器,另外两个线圈在单独的探测单元中,在这里它们连接到仪器的发射和接收通道。完整的系统被建模为三端口网络,其粘结的压电陶瓷盘的测量阻抗代表连接到任意固体衬底上的传感器。建立的传输线模型是电磁系统物理参数的函数,例如每个线圈的匝数和直径以及它们的间距。该模型提供了电输入阻抗和脉冲回波响应的立即预测。该模型已通过实验验证,并对输入参数进行了敏感性分析。这样就可以优化各种参数。已经针对体波和导波示例构建了电感耦合换能器系统。通过使用chi激励和基线减法,在单脉冲,导波脉冲-回波模式测量中,铝板结构上的探测线圈和换能器线圈之间有5 mm的间隔,从而实现了700 mm的检查距离。在体波示例中,成功地从反射脉冲到达时间的变化中识别出8.9毫米厚的碳纤维复合材料样品中的分层。

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