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Modelling and optimisation of a dual-control MHz-level CLLC converter with minimised power losses in battery charging applications

机译:双控制MHz级CLLC转换器的建模与优化,电池充电应用中的功率损耗最小化

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摘要

In this study, a novel 'f -phi' dual-control modulation is proposed for the MHz-level CLLC converters in battery charging applications. Phase shift between the primary and secondary switches is utilised as an additional control variable to effectively reduce the power losses, especially in light- and medium-load conditions. Compared to other state of the art, a more generalised theoretical model is developed to characterise the converter with higher accuracy based on extended harmonic approximation. Furthermore, a numerical algorithm is utilised to thoroughly examine the converter performance under various operating conditions and systematically search for the optimised design parameters under the proposed modulation scheme. The modelling and optimisation are verified by simulation on a 3.3 kW onboard charger design for electric vehicles, which shows an estimated efficiency enhancement between 1 and 4%. Finally, a laboratory prototype has been developed using gallium nitride semiconductor devices, at the resonant frequency of 1 MHz. The converter measured efficiencies are 96.4, 96.2 and 94% for the selected heavy, medium- and light-load conditions, respectively. This system would allow insights into the practical implementation and evaluation of utilising wide bandgap semiconductors to achieve both high power density and enhanced efficiency for emerging power electronic systems.
机译:在该研究中,提出了一种新颖的'F -PHI'双控调制,用于电池充电应用中的MHz级CLLC转换器。主开关之间的相移用作附加控制变量,以有效地降低功率损耗,尤其是在光线和中负载条件下。与其他技术相比,开发了一种更广泛的理论模型,以基于扩展谐波逼近的基于更高的精度来表征转换器。此外,利用数值算法在各种操作条件下彻底检查转换器性能,并在所提出的调制方案下系统地搜索优化的设计参数。通过对电动车辆的3.3千瓦板上的充电器设计进行仿真,验证了建模和优化,其显示估计效率1至4%。最后,使用氮化镓半导体器件在1MHz的谐振频率下开发了实验室原型。转换器测量的效率分别为所选择的重,中和光负荷条件的96.4,96.2和94%。该系统允许在利用宽带隙半导体的实际实施和评估中进行见解,以实现高功率密度和提高新兴电力电子系统的效率。

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  • 来源
    《Power Electronics, IET》 |2020年第8期|1575-1582|共8页
  • 作者

    Zhang Zeyu; Khaligh Alireza;

  • 作者单位

    Univ Maryland Dept Elect & Comp Engn College Pk MD 20742 USA|AmpX Technol Inc 387 Technol Adv Bldg College Pk MD 20742 USA;

    Univ Maryland Dept Elect & Comp Engn College Pk MD 20742 USA;

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  • 正文语种 eng
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