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An Electro-Mechanical Actuator Motor Voltage Estimation Method with a Feature-Aided Kalman Filter

机译:具有特征辅助卡尔曼滤波器的电动执行器电机电压估计方法

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摘要

Electro-Mechanical Actuators (EMA) have attracted growing attention with their increasing incorporation in More Electric Aircraft. The performance degradation assessment of EMA needs to be studied, in which EMA motor voltage is an essential parameter, to ensure its reliability and safety of EMA. However, deviation exists between motor voltage monitoring data and real motor voltage due to electromagnetic interference. To reduce the deviation, EMA motor voltage estimation generally requires an accurate voltage state equation which is difficult to obtain due to the complexity of EMA. To address this problem, a Feature-aided Kalman Filter (FAKF) method is proposed, in which the state equation is substituted by a physical model of current and voltage. Consequently, voltage state data can be obtained through current monitoring data and a current–voltage model. Furthermore, voltage estimation can be implemented by utilizing voltage state data and voltage monitoring data. To validate the effectiveness of the FAKF-based estimation method, experiments have been conducted based on the published data set from NASA’s Flyable Electro-Mechanical Actuator (FLEA) test stand. The experiment results demonstrate that the proposed method has good performance in EMA motor voltage estimation.
机译:机电致动器(EMA)随着越来越多地纳入“更多电动飞机”中而引起了越来越多的关注。需要研究EMA的性能下降评估,其中EMA电机电压是必不可少的参数,以确保EMA的可靠性和安全性。但是,由于电磁干扰,电动机电压监视数据与实际电动机电压之间存在偏差。为了减小偏差,EMA电机电压估算通常需要准确的电压状态方程,由于EMA的复杂性,很难获得该方程。为了解决这个问题,提出了一种基于特征的卡尔曼滤波器(FAKF)方法,该方法将状态方程替换为电流和电压的物理模型。因此,可以通过电流监控数据和电流-电压模型获得电压状态数据。此外,可以通过利用电压状态数据和电压监视数据来实现电压估计。为了验证基于FAKF的估算方法的有效性,已经根据美国宇航局(NASA)的电动机械促动器(FLEA)测试台上发布的数据集进行了实验。实验结果表明,该方法在EMA电机电压估计中具有良好的性能。

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