基于主动控制电感的多端口谐振DC-DC变换器用于混合储能系统集成

Thiago A. Pereira, Y. Pascal, M. Liserre, Yuqi Wei, H. Mantooth
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引用次数: 2

摘要

在重型电动汽车和充电基础设施领域,能源容易受到不同振幅和动态的瞬态影响。储能系统(ess)的设计必须在特定的响应时间和能量密度之间进行权衡,因为单一的能量来源不足以提供如此高的功率系统。需要将具有燃料电池、电池和超级电容器等不同功能的ess集成为单一能源。在这种情况下,基于谐振多绕组变压器(MTB)的变换器可以有效地将这些不同的ess与负载互连,因为谐振变换器能够在高开关频率下工作,从而实现高带宽控制。然而,由于存在多个谐振电路和可能的参数偏差,控制能力可能会受到影响。因此,提出了一种嵌入可变电感的多端口谐振dc-dc变换器,以减少转换级,增强不同ess之间的功率流管理。此外,该概念还可以通过补偿谐振频率来提高谐振器对参数偏差的抗扰性。最后,给出了一个嵌入可变电感的4端口谐振dc-dc变换器的仿真和实验结果,以验证该系统的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multiport Resonant DC-DC Converter using Actively-Controlled Inductors for Hybrid Energy Storage System Integration
In the field of heavy-duty electric vehicles and charging infrastructure, the energy sources are susceptible to transients with different amplitudes and dynamics. Energy storage systems (ESSs) must be designed by a trade-off between specific response time and energy density, because one single energy source is insufficient to supply such a high power system. Integrating ESSs with different capabilities, such as fuel-cell, battery, and supercapacitors, as a single energy source is required. In this context, a resonant multiwinding transformer-based (MTB) converter can be used to efficiently interconnect these different ESSs to the load, since the resonant converters are able to operate at a high switching frequency and hence enable high bandwidth control. However, due to the multiple resonant circuits and possible parameter deviations, the control capability might be compromised. Thus, a multiport resonant dc-dc converter embedded with variable inductors is proposed to enhance the power flow management among these different ESSs with reduced conversion stages. Further, the proposed concept can also improve the immunity to parameter deviations on the resonant by compensating the resonant frequency. Finally, simulations and experimental results of a 4-port resonant dc-dc converter embedded with variable inductors are presented to demonstrate the effectiveness of the proposed system.
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