级联多电平逆变器的分布式电流控制

Pablo Poblete, J. Pereda, F. Núñez, R. Aguilera
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引用次数: 4

摘要

多电平逆变器广泛应用于中压能源市场。其中,级联h桥(CHB)和模块化多电平逆变器(MMC)因其模块化硬件而脱颖而出,这使得在故障情况下可以轻松更换模块。通常,这些变换器采用集中控制方案操作,这需要大的处理能力,多个数字输出和晶体管开关信号的导线。集中式控制器的使用降低了系统的模块化,并随着串联(单元)连接的逆变器数量的增加而产生困难。本文提出了一种分布式控制策略,允许每个单元有一个独立的本地控制器,在不影响系统性能的情况下增加了多电平变换器的模块化。进行了大量的仿真,与dq轴上的PI电流控制器和移位PWM相比,显示了所提出的分布式控制策略的优点和缺点。在故障条件下对所提出的控制方案进行了测试,最后将其应用于永磁同步电机(PMSM)的场定向控制(FOC)中,以评估其在电气驱动应用中的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Distributed Current Control of Cascaded Multilevel Inverters
Multilevel inverters are widely used in the medium voltage energy market. Among them, the Cascaded H-Bridge (CHB) and Modular Multilevel Inverter (MMC) stand out for their modular hardware, which allows the easy replacement of their modules in the case of failures. Normally, these converters are operated with centralized control schemes, which require a large processing capacity, multiple digital outputs and wires for the switching signals of the transistors. The use of a centralized controller reduces the modularity of the system and generates difficulties as the number of inverters connected in series (cells) increases. In this work, a distributed control strategy for CHB converters is proposed, allowing each cell to have an independent local controller, which increases the modularity of the multilevel converter without deteriorating the performance of the system. Extensive simulations are carried out, showing the advantages and disadvantages of the proposed distributed control strategy offers when compared to a PI current controller on dq axes and Shifted PWM. The proposed control scheme is also tested under fault conditions and is finally applied in a Field Oriented Control (FOC) of a permanent magnet synchronous machine (PMSM), in order to evaluate its performance in electrical drives applications.
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