一种基于粒子滤波的模拟电路退化预测方法

Yang Yu, Yueming Jiang, Junyan Liu, Zhiming Yang, Xiyuan Peng
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引用次数: 0

摘要

随着现代电气设备对可靠性和安全性的要求越来越高,故障预测作为提高可靠性和降低停机成本的有效手段变得越来越重要。提出了一种新的模拟电路预测方法。首先提取初始状态和退化状态的时域输出波形,然后根据基于灰色理论的噪声估计原理,利用粒子滤波算法估计波形的变化,从更完整的信息中获得更合理的故障指标。然后,根据新获得的故障指标,构建了模拟电路退化预测模型。为了验证所提出的退化预测方法,在高压电源电路板上进行了实验。实验结果表明,该方法可以预测模拟电路的退化趋势,为模拟电路的可靠性设计提供参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Novel Degradation Prediction for Analog Circuits using Particle Filter
With the increasing demand of high reliability and safety of modern electric devices, failure prediction becomes more and more important since it is efficient to increase reliability and reduce downtime cost. A novel prediction method for analog circuits is proposed in this paper. Firstly, output waveforms in time domain of the initial state and the degradation states are extracted, then particle filter algorithm is implemented to estimate the changes of the waveforms according to the principles of noise estimation based on Grey Theory to obtain more reasonable fault indicators from more complete information. Thereafter, a novel degradation prediction model for analog circuits is constructed according to the newly obtained fault indicators. To validate the proposed degradation prediction method, the experiments are implemented on high-voltage power circuit board. The experimental results show that the method can predict the degradation trend and the information will be useful for the reliability design of the analog circuits.
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