Alternate arm modular multilevel converter for HVDC systems

Miss. Jyoti M. Kharade, N. G. Savagave
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Abstract

The Modular Multilevel Converter (MMC) and Alternate Arm Modular Multilevel Converter are the emerging converter topologies which are most effective and suitable for HVDC systems. The AAMMC represents a hybrid multilevel converter topology with high capability for high voltage applications. One of the serious problems of the HVDC system is the blocking of DC side faults. The MMC can be used to limit the DC side fault current but the main disadvantage this converter it requires double number of submodules to switch in reverse voltage and has inability to produce negative voltage due to half bridge submodules. This paper represents the schematic and working principle of AAMMC which can be used to block the DC side faults. The control and modulation schemes are used for converter operation and shows better advantages for balancing the capacitor voltage across all submodules. The decoupled current control technique is used for DC link voltage control, active and reactive power control. Thus the converter provides the advantages such as lower number of submodules as compared to MMC which helps to minimize the size and volume of the converter station, DC fault tolerance property and generation of almost sinusoidal multistep harmonic free AC voltage. The simulation results for fault tolerant 21 level AAMMC are discussed and analyzed for active-reactive power control and DC link voltage control to demonstrate the effectiveness of the implemented system.
高压直流系统的交替臂模块化多电平变换器
模块化多电平变换器(MMC)和交替臂模块化多电平变换器是新兴的最有效和最适合于高压直流系统的变换器拓扑结构。AAMMC代表了一种混合多电平转换器拓扑结构,具有高容量的高压应用。直流侧故障的阻断是高压直流系统面临的重要问题之一。MMC可用于限制直流侧故障电流,但该转换器的主要缺点是它需要两倍数量的子模块来切换反向电压,并且由于半桥子模块而无法产生负电压。本文介绍了用于直流侧故障屏蔽的AAMMC的原理图和工作原理。控制和调制方案用于变换器运行,并显示出更好的优势,平衡电容器电压在所有子模块。将解耦电流控制技术应用于直流链路电压控制、有功和无功控制。因此,与MMC相比,该变换器具有子模块数量较少的优点,这有助于最小化换流站的尺寸和体积,直流容错性能以及产生几乎正弦的多阶谐波无交流电压。讨论并分析了21级容错AAMMC在有功功率控制和直流链路电压控制中的仿真结果,验证了所实现系统的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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