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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Modeling and Optimization for Fault Diagnosis of Electromechanical Systems Based on Zero Crossing Algorithm
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Modeling and Optimization for Fault Diagnosis of Electromechanical Systems Based on Zero Crossing Algorithm

机译:基于零交叉算法的机电系统故障诊断建模与优化

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摘要

The demand of system security and reliability in the modern industrial process is ever-increasing, and fault diagnosis technology has always been a crucial research direction in the control field. Due to the complexity, nonlinearity, and coupling of multitudinous control systems, precise system modeling for fault diagnosis is attracting more attention. In this paper, we propose an improved method of electromechanical systems fault diagnosis based on zero-crossing (ZC) algorithm, which can present the calculation model of zero-crossing rate (ZCR) and optimize the parameters of ZC algorithm by establishing a criterion function model to improve the diagnosis accuracy and robustness of ZC characteristic model. The simulation validates the influence of different signal-to-noise ratio (SNR) on ZC feature recognition ability and indicates that the within-between distance model is effective to enhance the diagnose accuracy of ZC feature. Finally, the method is applied to the diagnosis of motor fault bearing, which confirms the necessity and effectiveness of the model improvement and parameter optimization and verifies the robustness to the load.
机译:现代工业过程中系统安全性和可靠性的需求是不断增加的,故障诊断技术始终是控制领域的重要研究方向。由于众多对照系统的复杂性,非线性和耦合,对故障诊断的精确系统建模是吸引更多的关注。在本文中,我们提出了一种基于过零(ZC)算法的机电系统故障诊断方法,其可以呈现过零率(ZCR)的计算模型,并通过建立标准函数来优化ZC算法的参数模型提高ZC特征模型的诊断精度和鲁棒性。仿真验证了不同信噪比(SNR)对ZC特征识别能力的影响,并表明距离模型内是有效增强ZC特征的诊断精度。最后,该方法适用于电机故障轴承的诊断,这证实了模型改进和参数优化的必要性和有效性,并验证了对负载的鲁棒性。

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