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Weak signal detection based on underdamped multistable stochastic resonance

机译:基于欠阻尼多稳态随机共振的弱信号检测

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Traditional overdamped stochastic resonance (SR) methods are difficult to match with complicated and variable input signals due to single stable-state types. Moreover, their performance depends on the parameter selection of highpass filters. To further explore the potential of SR, this paper studies the behavior of underdamped SR in a multistable nonlinear system by analyzing its output frequency responses, and presents a promising underdamped multistable SR method for weak signal detection and further incipient fault diagnosis of machinery. Numerical analyses indicate that the proposed method is supposed to possess two advantages: 1) the stable-state diversity of the multistable potential makes it easily match with input signals and 2) underdamped multistable SR is equivalent to a bandpass filter as the rescaling ratio varies, which is able to suppress the interference from multiscale noise. Simulated and experimental data of rolling element bearings demonstrate the effectiveness of the proposed method. For comparison, ensemble empirical mode decomposition (EEMD) method and traditional overdamped bistable SR method are also employed to process the data. The comparison results show that the proposed method can effectively detect incipient fault characteristics and perform better than traditional SR and EEMD methods.
机译:由于单一的稳态类型,传统的过阻尼随机共振(SR)方法难以与复杂且可变的输入信号相匹配。而且,它们的性能取决于高通滤波器的参数选择。为了进一步探索SR的潜力,本文通过分析多稳态非线性系统的输出频率响应来研究欠阻尼SR的行为,并提出了一种有前景的欠阻尼多稳态SR方法,用于弱信号检测和进一步的机械早期故障诊断。数值分析表明,该方法应具有两个优点:1)多稳态电势的稳态分集使其易于与输入信号匹配; 2)阻尼不足的多稳态SR等效于带通滤波器,因为重缩放比例有所变化,能够抑制多尺度噪声的干扰。滚动轴承的仿真和实验数据证明了该方法的有效性。为了进行比较,还采用了集成经验模式分解(EEMD)方法和传统的过阻尼双稳态SR方法来处理数据。比较结果表明,与传统的SR和EEMD方法相比,该方法可以有效地检测出早期的故障特征,并具有更好的性能。

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