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An improved phase generated carrier demodulation scheme for sinusoidal phase-modulating interferometer to detect air-solid interface acoustic waves

机译:一种改进的阶段产生的正弦相位调制干涉仪的载波解调方案,以检测空心界面声波

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摘要

When acoustic waves reach an air-solid interface, surface acoustic waves will be generated, and such waves may carry important acoustic information. In order to detect acoustic waves at air-solid interface, a non-contact detection method based on a partial-fiber sinusoidal phase-modulating interferometer (SPMI) is proposed in this paper. An improved phase generated carrier (PGC) demodulation scheme is also proposed to eliminate demodulation error caused by changes of interference signal parameters such as interference signal visibility, phase modulation depth and carrier phase delay. In our research, the improved PGC demodulation algorithm is first used to accurately calculate phase modulation depth and carrier phase delay, and then the in-phase and quadrature components of an interference signal are pre-normalized. Next, the visibility coefficient of the interference signal at each moment is derived by self-multiplying. Finally, the in-phase and quadrature components are completely normalized. The accuracy and effectiveness of the sinusoidal phase-modulating interferometer method and the improved PGC demodulation algorithm for detecting acoustic waves at air-solid interface are proven by numerical simulations and experiments. The air-solid interface acoustic waves excited by various acoustic sources are detected in experiments. The experiment results show that the detectable frequency range of the system is 100 Hz-3 kHz, the minimum detectable amplitude is 0.045 rad/root Hz, and the average signal-to-noise-and-distortion ratio (SINAD) is 28.98 dB. (C) 2021 Elsevier Ltd. All rights reserved.
机译:当声波到达气 - 固界面,表面声波将被生成,并且这样的波可以携带重要声信息。为了检测空气固体界面处的声波,本文提出了一种基于部分纤维正弦相位调制干扰仪(SPMI)的非接触检测方法。还提出了一种改进的阶段产生的载波(PGC)解调方案以消除由干扰信号参数的变化引起的解调误差,例如干扰信号可见性,相位调制深度和载波相位延迟。在我们的研究中,首先使用改进的PGC解调算法来精确计算相位调制深度和载波相位延迟,然后预先归一成的干扰信号的同相和正交分量。接下来,通过自乘性导出每个时刻的干扰信号的可见度系数。最后,全阶段和正交组分完全归一化。通过数值模拟和实验证明了用于检测空中界面处的声波的声波的精度和有效性和改进的PGC解调算法。在实验中检测到各种声学源激发的空气固识界面声波。实验结果表明,系统的可检测频率范围为100Hz-3 kHz,最小可检测幅度为0.045 rad / Root Hz,并且平均信号对噪声和失真率(SINAD)为28.98dB。 (c)2021 elestvier有限公司保留所有权利。

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