电动汽车充电无线传输系统软启动与软关闭方法研究

Calvin Riekerk, Francesca Grazian, T. Soeiro, Jianning Dong, P. Bauer
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引用次数: 2

摘要

随着电动汽车(ev)的普及和对用户便利性的追求,无线电力传输(WPT)成为一种极具吸引力的电池充电技术。WPT在电子交通中的使用并不简单,因为目前的标准化限制了允许的工作频率范围和辐照磁场的大小。虽然,为了保证本然逆变器开关的零电压开关(ZVS),它们的工作频率需要在任何时候都稍微调整,使电路在无源网络的等效感应区工作。除了半导体的软开关外,另一个控制目标是限制逆变器电流以抑制辐照磁场。WPT系统的启动尤其具有挑战性,因为加载条件的不确定性和线圈的不对准会使这些控制目标复杂化。针对S-S补偿和双面LCC补偿,本文对h桥逆变器的三种启动调制策略进行了基准测试,以降低暂态电流幅值并保证ZVS运行。此外,还比较了两种软关断策略对S-S补偿的影响。结果表明,对称相移(SPS)控制与自振荡反馈控制(也称为双控制)在启动和关闭时的S-S补偿性能最好。频率与SPS控制在谐振以下启动相结合,对双面LCC补偿的软启动效果最好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study on Soft Start-Up and Shut-Down Methods for Wireless Power Transfer Systems for the Charging of Electric Vehicles
The increase in popularity of electric vehicles (EVs) and the pursuit of user convenience makes wireless power transfer (WPT) an attractive technology for the charging of batteries. The usage of WPT in e-transportation is not straightforward because the current standardization limits the allowed operating frequency range and magnitude of the irradiated magnetic field. Although, to safeguard the zero voltage switching (ZVS) of the intrinsic inverter switches, their operating frequency needs to be slightly adapted at all time such that the circuit functions in the equivalent inductive region of the passive network. Besides the semiconductors’ soft switching, another control objective is limiting the inverter current to restrain the irradiated magnetic field. The start-up of the WPT system can be particularly challenging because uncertainties on the loading condition and coils’ misalignment can complicate these control objectives. This paper benchmarks three start-up modulation strategies for the H-bridge inverter which aim to reduce the amplitude of the transient currents and to ensure ZVS operation for the S-S compensation and double-sided LCC compensation. In addition two soft shut-down strategies are compared for the S-S compensation. The results show that the symmetrical phase-shift (SPS) control with self-oscillating feedback control, also known as Dual Control gives the best performance for S-S compensation at start-up and shut-down. The combination of frequency and SPS control starting below resonance gives the best results for the soft start-up of the double-sided LCC compensation.
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