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Experimental Evaluation of Three Designs of Electrodynamic Flexural Transducers

机译:三种电动弯曲传感器设计的实验评估

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摘要

Three designs for electrodynamic flexural transducers (EDFT) for air-coupled ultrasonics are presented and compared. An all-metal housing was used for robustness, which makes the designs more suitable for industrial applications. The housing is designed such that there is a thin metal plate at the front, with a fundamental flexural vibration mode at ∼50 kHz. By using a flexural resonance mode, good coupling to the load medium was achieved without the use of matching layers. The front radiating plate is actuated electrodynamically by a spiral coil inside the transducer, which produces an induced magnetic field when an AC current is applied to it. The transducers operate without the use of piezoelectric materials, which can simplify manufacturing and prolong the lifetime of the transducers, as well as open up possibilities for high-temperature applications. The results show that different designs perform best for the generation and reception of ultrasound. All three designs produced large acoustic pressure outputs, with a recorded sound pressure level (SPL) above 120 dB at a 40 cm distance from the highest output transducer. The sensitivity of the transducers was low, however, with single shot signal-to-noise ratio (SNR) ≃ 15 dB in transmit–receive mode, with transmitter and receiver 40 cm apart.
机译:提出并比较了用于空气耦合超声的电动弯曲传感器(EDFT)的三种设计。全金属外壳的坚固性使其更适合工业应用。外壳的设计使得前面有一块薄金属板,基本弯曲振动模式为〜50 kHz。通过使用挠曲共振模式,无需使用匹配层即可实现与负载介质的良好耦合。前辐射板由换能器内部的螺旋线圈进行电动驱动,当向其施加交流电流时会产生感应磁场。换能器无需使用压电材料即可运行,这可以简化制造过程并延长换能器的使用寿命,并为高温应用开辟了可能性。结果表明,不同的设计在超声的产生和接收方面表现最佳。这三种设计均产生较大的声压输出,并且在距最高输出换能器40 cm的距离处记录的声压级(SPL)高于120 dB。换能器的灵敏度很低,但是在发射-接收模式下,单发信噪比(SNR)仅为15 dB,发射器和接收器之间相距40 cm。

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