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Reflective SOA-based Fiber Bragg Grating Ultrasonic Sensing System with Two Wave Mixing Interferometric Demodulation

机译:具有两个波混频干涉解调的基于SOA的反射式光纤布拉格光栅超声传感系统

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Damages such as cracking or impact loading in civil, aerospace, and mechanical structures generate transient ultrasonic waves, which can be used to reveal the structural health condition. Hence, it is necessary to find a practical tool based on ultrasonic detection for structural health monitoring. In this work, we describe an intelligent fiber-optic ultrasonic sensing system, which is designed based on a fiber Bragg grating (FBG) and a reflective semiconductor optical amplifier (RSOA) used as an adaptive source, and demodulated by an adaptive photorefractive two wave mixing (TWM) technique without any active compensation of quasi-static strains and temperature. As the wavelength of the FBG shifts due to the excited ultrasonic waves, the wavelength of the optical output from the fiber cavity laser shifts accordingly. With regard to the shift of the FBG reflective spectrum, the adaptivity of the RSOA-based laser is analyzed theoretically and verified by the TWM demodulator. Additionally, due to the response time of the photorefractive crystal, the TWM demodulator is insensitive to low frequency-FBG spectral shift. The results demonstrate that this proposed FBG ultrasonic sensing system has high sensitivity and can respond the ultrasonic waves into the megahertz frequency range, which shows a potential for acoustic emission detection in practical applications.
机译:民用,航空航天和机械结构中的裂缝或冲击装载等损坏产生瞬态超声波,可用于揭示结构健康状况。因此,有必要基于超声波检测进行结构健康监测的实用工具。在这项工作中,我们描述了一种智能光纤超声波传感系统,其基于光纤布拉格光栅(FBG)和用作自适应源的反射半导体光放大器(RSOA)设计,并由自适应光折叠两波解调混合(TWM)技术而不存在对准静态菌株和温度的任何主动补偿。由于FBG由于激发的超声波由于激发的超声波而移动的波长,因此来自光纤腔激光器的光学输出的波长相应地移动。关于FBG反射光谱的偏移,理论上通过TWM解调器验证了基于RSOA的激光的适应性。另外,由于光折射晶体的响应时间,TWM解调器对低频-FBG光谱移位不敏感。结果表明,该提出的FBG超声波传感系统具有高灵敏度,并且可以将超声波响应到Megahertz频率范围内,这表示实际应用中的声学排放检测的可能性。

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