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Research on the weak Signal Detection Method Based on Adaptive Vibrational Resonance

机译:基于自适应振动共振的弱信号检测方法研究

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In this paper, the weak signal detection under α stable noise is investigated based on bistable vibrational resonance (VR) which is driven by a high frequency signal. On the one hand, the energy of the high frequency drive signal is transferred to the low frequency weak signal when VR occurs; on the other hand, the control of stochastic resonance (SR) is achieved based on VR, which transfers more noise energy into useful signal energy. In addition, considering the requirements of real-time detection, the amplitude and frequency of the high frequency drive signal are optimized by the knowledge-based particle swarm optimization (KPSO), which takes the mean signal-noise-ratio (MSNR) of output as the fitness function, and the property that VR system produces the best resonance effect just when the valid system parameter a(B,Ω) is greater than zero as knowledge. Finally, the parameter compensation is combined to achieve multi-high frequency weak signals detection with α stable noise. Furthermore, the method is applied to the vibration fault diagnosis of a mono-crystalline silicon furnace, and the experiment results show the effectiveness and practicability of the method.
机译:在本文中,基于由高频信号驱动的双稳态振动谐振(VR)来研究α稳定噪声下的弱信号检测。一方面,当VR发生时,高频驱动信号的能量被传送到低频弱信号;另一方面,基于VR实现随机共振(SR)的控制,其将更多的噪声能量转换为有用的信号能量。此外,考虑到实时检测的要求,高频驱动信号的幅度和频率由基于知识的粒子群优化(KPSO)进行了优化,这采用了输出的平均信噪比(MSNR)作为健身功能,并且VR系统在有效的系统参数A(B,ω)大于零作为知识时,VR系统产生最佳共振效果的性质。最后,组合参数补偿以实现具有α稳定噪声的多高频弱信号检测。此外,该方法应用于单晶硅炉的振动故障诊断,实验结果显示了该方法的有效性和实用性。

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