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System harmonic interaction between DC and AC adjustable speed drives and cost effective mitigation

机译:DC和AC可调速度的系统谐波相互作用和具有成本效益的缓解

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In industrial applications where both DC (direct current) and AC (alternating current) adjustable speed drives (ASD) are used, high levels of harmonic voltage and current distortions are produced. For instance, in oil and gas industry, including land and offshore drilling rigs, ships, deep notches in the voltage waveform exist due to SCR's (silicon controlled rectifier or thyristor) operation in the mud pump DC drives. With voltage distortion often exceeding 20%, equipment associated with the drilling operation can experience erratic operation and equipment damage. Even though the notch phenomenon is well understood, the failure mode of AC ASDs has not been analyzed in published literatures. This paper provides the background of the typical power distribution installation in such an application, analyzes the voltage notches in AC/DC converters and the problems that they create, more significantly, presents the AC ASD components failure mechanisms and proposes a cost effective solution without introducing expensive harmonic filters. The theoretical foundation and analytical derivation that are used to calculate notch depth, width, and frequency resonance excitation interacting with AC ASD's electromagnetic interference (EMI) filter will be discussed. Variation factors influencing the harmonic characteristics including SCR firing angle, generator and cable impedance, ASD's input AC inductors or DC chokes are quantitatively evaluated. It will be demonstrated that ASDs with DC chokes are less sensitive to cause resonances through system harmonics interaction, possibly eliminating the need to install expensive and large passive filters. Theoretical and simulation models are validated through an experimental setup of a 15kW, 480V ASD system.
机译:在使用DC(直流)和交流(交流电流)可调速度驱动器(ASD)的工业应用中,产生高水平的谐波电压和电流失真。例如,在石油和天然气工业中,包括陆地和海上钻井钻井平台,船舶,由于泥浆泵直流驱动器中的SCR(硅控制整流器或晶闸管)操作,存在电压波形中的深度凹口。由于电压失真通常超过20%,与钻孔操作相关的设备可以体验不稳定的操作和设备损坏。即使陷波现象很了解,AC ASD的故障模式也没有在公开的文献中分析。本文提供了在这种应用中的典型配电装置的背景,分析了AC / DC转换器中的电压槽口以及它们创造的问题更有显着提出了AC ASD组件故障机制,并提出了经济效益的解决方案而不引入昂贵的谐波过滤器。用于计算与AC ASD的电磁干扰(EMI)滤波器相互作用的Notch深度,宽度和频率共振激发的理论基础和分析推导。影响谐波特性的变化因素包括SCR触发角,发电机和电缆阻抗,ASD的输入交流电感器或DC扼流圈是量化的。将证明,具有直流扼流圈的ASDS对通过系统谐波相互作用引起共振的敏感性,可能消除了安装昂贵和大型无源滤波器的需要。理论和仿真模型通过一个15kW,480V ASD系统的实验设置验证。

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