晶闸管
转换器
模块化设计
高压
整流器(神经网络)
电压源
可控性
工程类
电气工程
可扩展性
电压
电子工程
储能
计算机科学
功率(物理)
物理
随机神经网络
数学
量子力学
机器学习
应用数学
数据库
循环神经网络
人工神经网络
操作系统
作者
Jayesh Kumar Motwani,Jian Liu,Aditya Rao,Rolando Burgos,Dushan Boroyevich,Zhi Zhou,Anthony Popovski,Richard Beddingfield,Thibaut Harzig,Dong Dong
标识
DOI:10.1109/tpel.2024.3440917
摘要
Compared with line-commutated converters (LCC) technology, voltage-source converters (VSCs), exemplified by modular multilevel converters (MMCs) have emerged as a superior alternative for HVdc applications, offering enhanced controllability, functionality, and modular design. However, VSC-MMC has relatively higher losses and energy storage requirements than LCC. Addressing these intrinsic drawbacks of VSC-MMCs, there has been a recent demand for converters that combine ultralow conduction losses and high power density from thyristor-based valves in LCC with VSC-MMCs' modularity and controllability. This article presents the architecture and operational strategy of one such converter: Thyristor-embedded hybrid MMC (SCR-HMMC). SCR-HMMC distinguishes itself by utilizing fewer switches, reducing arm energy storage requirements, and achieving lower losses compared with other state-of-the-art solutions. The bidirectional converter is adept at managing high-ac/low-dc and low-ac/high-dc voltage conversions while also boasting black-start functionality, modular design, and scalability. Its modularity and scalability combined with reduced expenses, losses, and size render SCR-HMMC a viable proposition for both high-voltage and medium-voltage (MV) applications. A 20-kW MV SCR-HMMC prototype has been fabricated for the laboratory setting, demonstrating successful operation in both inverter and rectifier modes, marking one of the first such in-depth practical demonstrations of a thyristor-embedded bidirectional multilevel VSC.
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