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A Novel Approach for Noise Rejection and Partial Discharge Identification in Electric Drives for Aerospace

机译:航空电力驱动器中噪声抑制和局部放电识别的一种新方法

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Aerospace electrification has to go through significant innovations regarding adjustable speed drives, which are needed to increase specific power and effectiveness of propulsion and power control systems. This involves electrical insulation design with high-electric field and, therefore, increased risk of accelerated insulation aging. This risk becomes dramatic if highly-energetic degradation phenomena, such as partial discharges, PD, incept in (unavoidable) insulation defects. However measuring partial discharges, that is, the property associated with the fastest electrical degradation mechanism in organic insulation, has to face an increasing amount of issues compared to sinusoidal AC voltage supply. Referring to power electronics for rotating machines drives, the main difficulty lies with the extraction of partial discharge pulses from the noise produced by switch commutation, especially when the slew rate is fast and the operating voltage is high, compared to the threshold for partial discharge inception. Since partial discharges tend to occur mostly during voltage rise and fall times, thus simultaneously to switching noise, poor techniques for noise rejection and partial discharge identification may affect significantly any quality, commissioning and diagnostic test performed on electrical devices and apparatus supplied by power electronic waveforms. This paper presents a novel approach to partial discharge and noise separation, which can work also for very fast switch rise times, and increased operating voltage and frequency. Based on experimental testing, this paper shows that considering the time domain, rather than the frequency domain on which noise filtering is commonly based, and resorting to signal variance evaluation, partial discharge pulses can be extracted effectively from commutation noise.
机译:航空航天电气化必须通过有关可调速度驱动的重要创新,这是提高推进和功率控制系统的特定功率和有效性所需的。这涉及具有高电场的电绝缘设计,因此增加了加速绝缘老化的风险。这种风险是剧烈的,如果高能量的降解现象,例如部分放电,PD,incept(不可避免的)绝缘缺陷。然而,测量部分放电,即与有机绝缘中最快的电解机制相关的性质,与正弦AC电压电源相比,必须面对越来越多的问题。参考用于旋转机器驱动器的电力电子器件,主要难度在于从开关换向产生的噪声的提取,特别是当转换速率快速并且工作电压高,与局部放电阈值相比。由于部分放电倾向于主要发生在电压上升和下降时间期间,因此同时对开关噪声,噪声抑制和局部放电识别的差可能影响在电力电子波形提供的电气设备和装置上执行的任何质量,调试和诊断测试。本文介绍了一种局部放电和噪声分离的新方法,其也可以用于非常快速的开关上升时间,以及增加的工作电压和频率。基于实验测试,本文示出了考虑时域,而不是噪声滤波的频域通常基于,并且借助于信号方差评估,可以有效地从换向噪声提取局部放电脉冲。

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