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Adaptive and robust prediction for the remaining useful life of electrolytic capacitors

机译:电解电容器剩余使用寿命的自适应鲁棒预测

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In integrated avionics systems, ensuring the high reliability and lengthening the life cycle of the avionics circuits become more and more important. This paper proposes an adaptive and robust prediction method to estimate the state of health and predict the remaining useful life (RUL) of electrolytic capacitors, which is one of the most significant components in avionics circuits. Based on an accelerated aging experiment performed by NASA, the degradation mechanism of electrolytic capacitors is analyzed. According to the capacitance loss data, a combination of the Verhulst model and the exponential model is adopted as the empirical model, and the unscented Kalman filter is applied to generate the proposal distribution of the particle filter to track the degradation path. Regarding the particle impoverishment, a particle swarm optimization algorithm is adopted to optimize the residual resampling step to improve the prediction accuracy. Also, adaptively adjusting the number of particles is introduced to make the algorithm more computationally efficient. Compared with the conventional particle filter algorithms, the experiment on the electrolytic capacitors degradation data indicates that the proposed novel method is able to provide a higher accuracy for the remaining useful life evaluation.
机译:在集成航空电子系统中,确保高可靠性并延长航空电子电路的寿命变得越来越重要。本文提出了一种自适应且鲁棒的预测方法,用于估计健康状态并预测电解电容器的剩余使用寿命(RUL),电解电容器是航空电子电路中最重要的组成部分之一。基于美国宇航局的加速老化实验,分析了电解电容器的退化机理。根据电容损耗数据,采用Verhulst模型和指数模型的组合作为经验模型,并应用无味卡尔曼滤波器生成粒子滤波器的建议分布,以跟踪退化路径。对于粒子贫困问题,采用粒子群优化算法优化残差重采样步骤,提高了预测精度。另外,引入自适应地调整粒子数量以使算法在计算上更有效。与传统的粒子滤波算法相比,对电解电容器退化数据的实验表明,所提出的新方法能够为剩余使用寿命评估提供更高的精度。

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