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Based on optical fiber Michelson interferometer for acoustic emission detection experimental research

机译:基于光纤Michelson干涉仪的声学排放检测实验研究

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A type of Michelson interferometer with two optical fiber loop reflectors acoustic emission sensor is proposed in the article to detect the vibrations produced by ultrasonic waves propagating in a solid body. Two optical fiber loop reflectors are equivalent to the sensing arm and the reference arm instead of traditional Michelson interferometer end reflecter Theoretical analyses indicate that the sensitivity of the system has been remarkably increased because of the decrease of the losses of light energy. The best operating point of optical fiber sensor is fixed by theoretical derivation and simulation of computer, and the signal frequency which is detected by the sensor is the frequency of input signal. PZT (Piezoelectric Ceramic) is powered by signal generator as known ultrasonic source, The Polarization controller is used to make the reflected light interference,The fiber length is changed by adjusting the DC voltage on the PZT with the fiber loop to make the sensor system response that ΔΦ is closed to π/2. the signal basis frequency detected by the sensor is the frequency of the input signal. Then impacts the surface of the marble slab with home-made mechanical acoustic emission source. And detect it. and then the frequency characteristic of acoustic emission signal is obtained by Fourier technique. The experimental results indicate that the system can identify the frequency characteristic of acoustic emission signal, and it can be also used to detect the surface feeble vibration which is generated by ultrasonic waves propagating in material structure.
机译:在制品中提出了一种具有两个光纤环反射器声发射传感器的迈克森干涉仪,以检测在固体中传播的超声波产生的振动。两个光纤环反射器等于传感臂和参考臂,而不是传统的迈克尔逊干涉仪端反射器理论分析表明,由于光能损失的损失降低,系统的灵敏度显着增加。光纤传感器的最佳工作点由计算机的理论推导和仿真固定,并且由传感器检测的信号频率是输入信号的频率。 PZT(压电陶瓷)由信号发生器供电,作为已知的超声波源,偏振控制器用于使反射光干扰,通过用光纤环调节PZT上的DC电压来改变光纤长度以使传感器系统响应改变。 Δφ关闭到π/ 2。由传感器检测的信号基频率是输入信号的频率。然后用自制机械声学发射源影响大理石板的表面。并检测它。然后通过傅立叶技术获得声发射信号的频率特性。实验结果表明系统可以识别声发射信号的频率特性,并且还可以用于检测通过在材料结构中传播的超声波产生的表面虚弱振动。

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