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Weak thruster fault detection for AUV based on stochastic resonance and wavelet reconstruction 被引量:5
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作者 刘维新 王玉甲 +1 位作者 刘星 张铭钧 《Journal of Central South University》 SCIE EI CAS CSCD 2016年第11期2883-2895,共13页
When the bi-stable stochastic resonance method was applied to enhance weak thruster fault for autonomous underwater vehicle(AUV), the enhancement performance could not satisfy the detection requirement of weak thruste... When the bi-stable stochastic resonance method was applied to enhance weak thruster fault for autonomous underwater vehicle(AUV), the enhancement performance could not satisfy the detection requirement of weak thruster fault. As for this problem, a fault feature enhancement method based on mono-stable stochastic resonance was proposed. In the method, in order to improve the enhancement performance of weak thruster fault feature, the conventional bi-stable potential function was changed to mono-stable potential function which was more suitable for aperiodic signals. Furthermore, when particle swarm optimization was adopted to adjust the parameters of mono-stable stochastic resonance system, the global convergent time would be long. An improved particle swarm optimization method was developed by changing the linear inertial weighted function as nonlinear function with cosine function, so as to reduce the global convergent time. In addition, when the conventional wavelet reconstruction method was adopted to detect the weak thruster fault, undetected fault or false alarm may occur. In order to successfully detect the weak thruster fault, a weak thruster detection method was proposed based on the integration of stochastic resonance and wavelet reconstruction. In the method, the optimal reconstruction scale was determined by comparing wavelet entropies corresponding to each decomposition scale. Finally, pool-experiments were performed on AUV with thruster fault. The effectiveness of the proposed mono-stable stochastic resonance method in enhancing fault feature and reducing the global convergent time was demonstrated in comparison with particle swarm optimization based bi-stochastic resonance method. Furthermore, the effectiveness of the proposed fault detection method was illustrated in comparison with the conventional wavelet reconstruction. 展开更多
关键词 autonomous underwater vehicle(AUV) THRUSTER weak fault particle swarm optimization(PSO) mono-stable stochastic resonance wavelet reconstruction
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基于随机共振和BBS/ICA的轴承故障诊断 被引量:3
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作者 赵军 崔颖 +1 位作者 刘维 赖欣欢 《北京工业大学学报》 CAS CSCD 北大核心 2014年第2期176-181,共6页
提出了一种基于变尺度级联单稳随机共振和盲源分离/独立分量分析(BBS/ICA)相结合的轴承故障诊断方法.首先,通过高频信号控制下的变尺度单稳随机共振将信号所含的噪声能量转化为信号能量,再用BSS/ICA分离残余噪声.理论分析及仿真结果表明... 提出了一种基于变尺度级联单稳随机共振和盲源分离/独立分量分析(BBS/ICA)相结合的轴承故障诊断方法.首先,通过高频信号控制下的变尺度单稳随机共振将信号所含的噪声能量转化为信号能量,再用BSS/ICA分离残余噪声.理论分析及仿真结果表明:该方法能利用噪声来增强信号频率特征,使得大参数信号能从系统中获得更多能量,又能消除噪声,从而实现故障的有效诊断.试验台模拟了滚动轴承内圈及外圈故障,验证了该方法的有效性. 展开更多
关键词 单稳随机共振 级联 盲源分离 独立分量分析 轴承故障
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