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A novel MMC control scheme to increase the DC voltage in HVDC transmission systems

机译:一种新颖的MMC控制方案,用于增加HVDC输电系统中的直流电压

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摘要

This research investigates third harmonic injection applied to a modular multilevel converter (MMC) to generate a higher DC voltage. This is achieved using a proposed novel control scheme that activates existing submodules (SMs) in the converter arms. The technique is fundamentally different to, and does the reverse of, the well-known third harmonic injection techniques utilized to increase the AC output voltage in three-phase converter systems for a given DC link voltage. In the proposed scheme, the number of inserted SMs in each converter leg is greater than the number of SMs per arm, whence the MMC can operate with a higher DC link voltage while the SM number per arm and their capacitor voltages remain unchanged. This lowers the DC current and the DC transmission loss is significantly reduced by 22%. Station conduction losses with the operational scheme are lowered by 2.4%. The semiconductor current stresses are also lowered due to the reduced DC component of arm currents. Additionally, the phase energy variation is reduced by 18%, which benefits circulating current control. The operating principles are presented in detail and mathematical models for conduction losses, energy variation, and circulating voltage are derived. Simulation of a point-to-point HVDC system demonstrates the effectiveness of the proposed MMC operational scheme.
机译:这项研究调查了三次谐波注入应用于模块化多电平转换器(MMC)以产生更高的DC电压。这是通过提出一种新颖的控制方案来实现的,该方案激活了转换器臂中的现有子模块(SM)。该技术与已知的三次谐波注入技术从根本上不同,并且与之相反,后者用于在给定的DC链路电压下增加三相转换器系统中的AC输出电压。在提出的方案中,每个转换器分支中插入的SM数量大于每条臂的SM数量,因此MMC可以在更高的直流链路电压下工作,而每条臂的SM数量及其电容器电压保持不变。这降低了直流电流,直流传输损耗大大降低了22%。该运行方案的站点传导损耗降低了2.4%。由于臂电流的直流分量减少,半导体电流应力也降低了。此外,相能量变化降低了18%,这有利于循环电流控制。详细介绍了工作原理,并导出了传导损耗,能量变化和循环电压的数学模型。点对点HVDC系统的仿真证明了所提出的MMC操作方案的有效性。

著录项

  • 作者

    Li Rui; Fletcher John;

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  • 年度 2017
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  • 原文格式 PDF
  • 正文语种 en
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