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首页> 外文期刊>IEEE Transactions on Power Electronics >Multifunctional Grid-Connected Multimodule Power Converters Capable of Operating in Single-Pulse and PWM Switching Modes
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Multifunctional Grid-Connected Multimodule Power Converters Capable of Operating in Single-Pulse and PWM Switching Modes

机译:能够以单脉冲和PWM切换模式运行的多功能并网多模块功率转换器

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摘要

Pulsewidth-modulated (PWM) techniques equip power converters with unique features such as input–output linearity and control flexibility. Nevertheless, frequent switching of semiconductor switching devices causes considerable switching loss, and therefore makes traditional two-level PWM converters inappropriate for high-power applications. Two alternatives for building modular structures, namely multipulse and multimodule PWM converters were introduced to provide not only voltage and current sharing among the semiconductor switching devices, but also a high-quality output voltage at a much lower switching frequency. While multipulse converters offer minimal switching losses, low-order harmonic neutralization, and the best utilization of the inverter, multimodule PWM converters give control flexibility and power structure simplicity. This paper combines these two, and preserves the advantages of both multipulse and multimodule PWM converters. This not only provides an additional degree of freedom for voltage control, but also enables the converter to operate in PWM mode during transient and in single-pulse mode during the steady state. For the PWM switching mode, a special space vector strategy of 3 p.u. switching frequency is presented to maximize the voltage utilization and maintain a linear transfer characteristic. The power structure and control methods are analyzed, and validated by simulation and experimentally.
机译:脉宽调制(PWM)技术使功率转换器具有独特的功能,例如输入输出线性度和控制灵活性。然而,半导体开关器件的频繁开关会引起相当大的开关损耗,因此使传统的两电平PWM转换器不适用于大功率应用。引入了两种用于构建模块化结构的替代方案,即多脉冲和多模块PWM转换器,以不仅提供半导体开关器件之间的电压和电流共享,而且还以低得多的开关频率提供高质量的输出电压。尽管多脉冲转换器提供了最小的开关损耗,低阶谐波中和以及逆变器的最佳利用率,但多模块PWM转换器却提供了控制灵活性和电源结构简单性。本文将两者结合起来,并保留了多脉冲和多模块PWM转换器的优势。这不仅为电压控制提供了额外的自由度,而且使转换器能够在瞬态期间以PWM模式运行,而在稳态期间以单脉冲模式运行。对于PWM开关模式,采用3 p.u的特殊空间矢量策略。提出了开关频率以最大程度地利用电压并保持线性传递特性。分析了功率结构和控制方法,并通过仿真和实验对其进行了验证。

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