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Modelling and analysis of high frequency resonant inductive power transfer for electric vehicle charging system

机译:电动汽车充电系统高频谐振电感电力传输的建模与分析

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In the recent decades, an enormous awakening in electrical vehicles researches and industries has raised the needs of safety and simplicity in the electrical vehicle battery charging. Many options are offered to transfer the electrical power wirelessly, comprising Inductive Power Transfer method which is a widely known way in doing a near-field wireless power transfer. In this paper, the proposed transfer circuit topology is the series-parallel using litz wire. The power converter circuits are modelled and analyzed using Simulink? while the resonant transfer circuit is modelled and analyzed using COMSOL?. Based on the availability of the components and the 85% minimum transfer efficiency targeted, the resonance frequency is found on 50,752 Hertz while the air gap is held constantly at 15.5 cm. In the primary side, the electricity from the grid system is converted into a resonant high frequency AC power by using an AC-AC converter with DC link. In the secondary side this high frequency AC power will then be rectified and regulated into a DC power using full bridge rectifier and Buck and Buck-Boost DC-DC converters with a two-schemes charging control before it is injected into the battery.
机译:近几十年来,电动汽车研究和行业的巨大觉醒已经提高了电动车电池充电的安全性和简单性。提供许多选择来无线传输电力,包括电感电力传输方法,这是做近场无线电力传输的广泛知识的方式。在本文中,所提出的传输电路拓扑是使用LITZ线的串联平行的。使用Simulink建模和分析电源转换器电路?虽然使用COMSOL模拟和分析谐振转移电路。基于组件的可用性和目标的85%最小转移效率,在50,752赫兹时发现共振频率,而气隙持续为15.5厘米。在初级方面,通过使用具有DC连杆的AC-AC转换器,电网系统的电力被转换为谐振高频交流电源。在次级侧,该高频交流电源将使用全桥式整流器和降压和降压 - 升压DC-DC转换器进行整流并调节到DC电力中,并在将其注入电池之前具有双方案充电控制。

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