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New Synergetic Control of a 20kW Isolated VIENNA Rectifier Front-End EV Battery Charger

机译:20kW隔离式VIENNA整流器前端EV电池充电器的新协同控制

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EV chargers with output power levels in the range of tens of kW are typically employing a front-end three-phase boost-type PFC rectifier stage for sinusoidal input current and DC-link voltage control, and a series-connected isolated DC/DC converter controlling the actual output/charging current or voltage. This paper explores a new synergetic control of both converter stages, which utilizes the DC/DC converter also for varying the DC-link voltage with six times the mains frequency, such that the currents of two mains phases are shaped sinusoidally. Accordingly, two bridge legs of the rectifier stage can remain clamped in 60°-wide intervals of the mains cycle and the pulse width modulation (PWM) can be restricted to the phase carrying the lowest current, i.e., only one of the three bridge legs is operated with PWM, designated as 1/3-PWM. Furthermore, the DC-link voltage that is switched by the operating rectifier phase is kept to the minimum and the system features high efficiency and low EMI, but still maintains boost capability, i.e., the option of conventional PWM of all three rectifier bridge legs (thus denominated as 3/3-PWM), which is advantageous in case a wide input or output voltage range needs to be covered. The new control concept is derived starting from a conventional approach with constant DC-link voltage, and is verified by simulations for a three-level Vienna Rectifier front-end and two cascaded DC/DC modules supplied from the halves of the symmetrically partitioned DC-link voltage. First, the operating behavior of the system utilizing the proposed control is described analytically. Next, the performance improvement achievable with the proposed control scheme is comparatively evaluated for a 20kW system designed for operation in a wide mains voltage range (260-530Vrms line-to-line) and an extremely wide DC output / battery voltage range (150-750Vdc), according to EV charging equipment supplier requirements of the State Grid Corp. of China. Finally, simulation results are presented which validate the operating principle of the proposed modulation and control scheme.
机译:输出功率水平在几十千瓦范围内的电动汽车充电器通常采用前端三相升压型PFC整流器级来控制正弦输入电流和直流母线电压,并采用串联的隔离式DC / DC转换器控制实际的输出/充电电流或电压。本文探索了两个转换器级的新型协同控制,该控制还利用DC / DC转换器以六倍于市电频率的方式改变直流母线电压,从而使两个市电相的电流呈正弦形。因此,整流器级的两个桥臂可以在电源周期的60°宽间隔内保持钳位状态,并且可以将脉宽调制(PWM)限制在承载最低电流的相位,即三个桥臂中只有一个通过PWM(称为1 / 3-PWM)进行操作。此外,通过整流器工作相切换的直流母线电压保持最小,系统具有高效率和低EMI的特点,但仍保持升压能力,即,所有三个整流器桥臂均采用常规PWM选项(因此被称为3 / 3-PWM),这在需要覆盖较宽的输入或输出电压范围的情况下是有利的。新的控制概念源自具有恒定直流母线电压的常规方法,并通过对三级式维也纳整流器前端和两个由对称分配的直流半桥提供的级联直流/直流模块的仿真进行了验证。链接电压。首先,分析地描述利用所提出的控制的系统的操作行为。接下来,针对设计用于在宽电源电压范围(260-530V \ n rms \ n逐行显示)和非常宽的DC输出/电池电压范围(150-750V \ n dc \ n),根据中国国家电网公司的EV充电设备供应商要求。最后,仿真结果验证了所提出的调制和控制方案的工作原理。

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