一种基于串并联输出直流-交流多模块2级电压源变换器的并网高压直流并联分接

A. Elserougi, A. Massoud, A. Abdel-Khalik, Shehab Ahmed
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引用次数: 5

摘要

通过使用并联或串联高压直流抽头,可以从高压直流输电线路抽头到三相局部电网。本文提出了一种新型并网直流并联抽头。该抽头采用串联输入、并联输出的多模块2级电压源变换器(VSC)作为传统的单直流-交流电压源变换器(VSC)的替代方案,随后采用降压变压器。在传统系统中,为了满足高压直流系统的高压要求,半导体器件应串联在一起。因此,仔细设计以确保开关之间的动态电压共享是必要的。所提出的技术不受此限制,因为半导体开关的串联连接可以通过采用大量的VSC模块来避免。该系统的控制器应保持相等的直流输入电压和相等的输出电流共享。在这项工作中提出了所提出的控制器的详细说明。仿真研究表明了所提结构的有效性,并验证了所提控制器的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A grid-connected HVDC shunt tap based on series-input parallel-output DC-AC multi-module 2-level voltage source converters
Tapping-off a small amount of power from an HVDC transmission line to a three-phase local grid can be achieved by using shunt or series HVDC taps. This paper proposes a new grid-connected HVDC shunt tap. The proposed tap uses series-input, parallel-output multi-module 2-level voltage source converters (VSCs) as an alternative to the conventional single DC-to-AC voltage source converter (VSC) followed by a step down transformer. In the conventional system, semiconductor devices should be connected in series, in order to meet the high-voltage requirements in the HVDC systems. Hence, careful design to ensure dynamic voltage sharing between switches is necessary. The proposed technique is not limited by this constraint, as series connection of semiconductor switches can be avoided by employing a large number of VSC modules. The controller of the proposed system should keep equal DC input voltages, and equal output current sharing. Detailed illustration for the proposed controller is presented in this work. A Simulation study is carried out to show the effectiveness of the proposed architecture and to validate the proposed controller.
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