A Wide Intermediate and Output DC Link Based Efficient Modulation Technique to Design PEV Charger Using Single Phase Vienna Rectifier

Saran Chaurasiya, Bhim Singh
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Abstract

For EV charging applications, single phase Vienna rectifier operated using classical modulation approach has problems with significant variations in efficiency and input current ripples. Additionally, for the efficient operation of DC-DC stage, the design of an electric vehicle (EV) charger employing an LLC resonant converter necessitates active management of the intermediate DC link with wide operation voltage range. To address this problem, this paper presents the design of single-phase portable EV charger using Vienna rectifier and full bridge LLC converter (FB-LLC). Here, rectifier stage is controlled through an efficient modulation technique (EMT), which provides half switching losses, current ripples and wide regulation of rectified voltage over real time variation in the battery terminal voltage. The LLC stage is controlled with optimum efficiency point frequency modulation technique to provide high efficiency operation over complete battery terminal voltage range. For better power factor correction (PFC) under distorted grid voltage scenarios, a frequency fixed (FF) second order generalized integrator (SOGI) is utilized for grid angle generation. This technique provides healthy estimation of grid angle under the presence of DC offset, harmonics, frequency, and phase drift in grid voltage. With the integration of grid voltage angle estimation algorithm in the control of single-phase Vienna rectifier, this converter possesses better PFC performance under both weak and strong grid conditions. A 2 kW EV charger with a battery pack terminal voltage range from 240–550 V, is designed and simulated to validate the performance of the designed system.
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基于宽中间输出直流链路的高效调制技术设计单相维也纳整流器PEV充电器
在电动汽车充电应用中,采用传统调制方式工作的单相维也纳整流器存在效率显著变化和输入电流波动的问题。此外,为了使DC-DC级高效运行,采用LLC谐振变换器的电动汽车充电器设计需要对宽工作电压范围的中间直流链路进行主动管理。为了解决这一问题,本文提出了采用维也纳整流器和全桥LLC转换器(FB-LLC)的单相便携式电动汽车充电器的设计。在这里,整流级通过有效的调制技术(EMT)进行控制,该技术提供了一半的开关损耗,电流波纹和整流电压对电池终端电压实时变化的广泛调节。LLC级采用最优效率点调频技术控制,在整个电池端电压范围内提供高效率运行。为了在电网电压畸变情况下更好地进行功率因数校正,利用固定频率二阶广义积分器(SOGI)生成电网角度。该技术在电网电压中存在直流偏置、谐波、频率和相位漂移的情况下,提供了栅格角的健康估计。将电网电压角估计算法集成到单相维也纳整流器的控制中,使得该变换器在弱电网和强电网条件下都具有较好的PFC性能。设计并仿真了一款电池组端电压为240 ~ 550v的2kw电动汽车充电器,验证了所设计系统的性能。
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