三相多级海温电网连接CM噪声的考虑

A. Tripathi, S. Madhusoodhanan, K. Mainali, A. Kadavelugu, D. Patel, S. Bhattacharya, K. Hatua
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引用次数: 14

摘要

固态变压器(SST)是智能电网应用中传统配电变压器的替代方案。通过采用紧凑的中频(MF)变压器进行隔离,SST在尺寸和重量上都有优点。它还提供了作为FACTS组件的灵活利用。开关变换器是共模(CM)和高频EMI噪声的潜在来源。这些噪声在基于SiC器件的SST中更令人讨厌,该器件在中压(MV)电平下以高dV/dT切换,导致高CM电压。SST浮动金属表面,如散热器和输出必须接地,以确保安全和平稳运行。然而,存在各种显著的低阻抗路径,包括紧凑变压器的寄生,这可能将CM噪声传导到电网。产生的CM噪声可能会影响控制。本文介绍了基于15kV SiC igbt的三相SST系统多级集成中的CM和接地挑战,称为无变压器智能变电站(TIPS)。TIPS采用中压交直流、中压到低压直流双有源桥和低压直流逆变级连接中压13.8kV和低压480V电网。本文对TIPS中的CM噪声进行了研究,并提出了一种抑制其的无源滤波方案。同时给出了考虑无源滤波器规格的时域仿真。介绍了3.64kV中压线对线并网的实验结果。在按比例缩小的条件下,使用低压样机验证了完全接地和CM扼流圈设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Grid connected CM noise considerations of a three-phase multi-stage SST
Solid State Transformer (SST) is an alternative to the conventional distribution transformer for smart grid applications. By employing a compact Medium-Frequency (MF) transformer for isolation, the SST has merits on size and weight. It also provides flexible utilization as a FACTS component. The switching converters are a potential source of Common-Mode (CM) and HF EMI noises. These noises are more nuisance in a SiC device based SST which switches at a high dV/dT at the Medium-Voltage (MV) level resulting in high CM voltages. The SST floating metalic surfaces such as heatsink and the output must be grounded for safety and smooth operation. However there are various significant low impedance paths present, including the parasitics of the compact transformer, which may conduct CM noise to the grid. The generated CM noise may affect the controls. This paper presents the CM and grounding challenges in the multistage integration of a three-phase SST system based on 15kV SiC IGBTs termed as Transformerless Intelligent Power Substation (TIPS). The TIPS interfaces MV 13.8kV and LV 480V grids using MV ac-dc, MV to LV dc-dc dual active bridge and LV dc-ac inverter stages. A study on the CM noise in the TIPS and a passive filter solution for its attenuation is presented in this paper. A time domain simulation considering the passive filter specification is also presented. The experimental results for line to line 3.64kV MV grid integration are presented. A LV prototype is used to verify the complete grounding and the CM choke design at a scaled-down condition.
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