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Virtual synchronous motor based-control of Vienna rectifier

机译:基于虚拟同步电机的维也纳整流器控制

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Vienna rectifiers are widely used because of their advantages of high power-factor, low voltage stress on the power semiconductor switches, high power density, stable output voltage, low current harmonic content, and good economics. And gradually applied to the front stage AC/DC part of the electric vehicle charger. Traditional Vienna rectifier control methods include double closed-loop control, hysteresis current control, and Sliding mode variable structure control strategy, but all strategies usually regulate DC-Voltage and keep the unity power factor. However, if it is used for the interface part of the electric vehicle charger with frequent load switching, it is necessary not only to ensure the stability of the output voltage and low THD of the current, but also to be able to respond to the fluctuation of the voltage and frequency of the power system and improve the inertia and damping at the interface. Thereby, the stability of the power grid is improved to a certain extent, and fast-charging is ensured while being grid-friendly. Therefore, this paper proposes to apply the virtual synchronous motor control to the Vienna rectifier to improve the adaptability of the grid to the large-scale access of electric vehicles. Build the topology of the Vienna rectifier in simlink and the modulation method using SVPWM to build a complete model on the basis of VSM.
机译:维也纳整流器是广泛使用的,因为它们具有高功率因数,低压应力对功率半导体开关的优点,高功率密度,稳定的输出电压,低电流谐波含量和良好经济学。并逐渐施加到电动车充电器的前级AC / DC部分。传统的维也纳整流器控制方法包括双闭环控制,滞后电流控制和滑动模式可变结构控制策略,但所有策略通常都调节直流电压并保持UNITY功率因数。但是,如果它用于具有频繁负载开关的电动车辆充电器的接口部分,则不仅要确保输出电压和电流低的稳定性,而且还能够响应波动电力系统的电压和频率,提高界面的惯性和阻尼。由此,电网的稳定性改善到一定程度,并且在友好友好的同时确保快速充电。因此,本文提出将虚拟同步电机控制应用于维也纳整流器,以提高电网对电动车辆大规模进入的适应性。使用SVPWM构建SIMLINK中维也纳整流器的拓扑,并使用SVPWM在VSM的基础上构建完整模型。

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