基于双向直流谐振变换器的混合储能系统及其控制策略
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TM46

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国家重点研发计划资助项目(2024YFB2408900)


A hybrid energy storage system and its control strategy based on a bidirectional resonant converter
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    摘要:

    随着清洁能源规模的不断扩大,可平滑电能输出的混合储能系统(hybrid energy storage system, HESS)逐渐受到广泛关注。双有源桥可实现电气隔离和软开关,常应用于HESS中。为拓宽电压增益范围并降低储能装置侧电流纹波,文中提出一种基于电流源型双向谐振变换器的HESS拓扑。首先,给出变换器的拓扑及等效电路,分析其开关模态和工作原理,推导出等效电路模型、电压增益表达式及低压侧电流纹波特性。在此基础上,提出一种解耦控制策略,通过调节各储能装置侧全桥的占空比独立控制超级电容和蓄电池的传输功率,并根据功率分配指令动态调整各端口功率占比。仿真结果表明,所提系统能实现各开关管的零电压开通(zero voltage switching, ZVS),在负载切换和功率指令变化时均表现出快速的动态响应和良好的稳定性。

    Abstract:

    With the continuous expansion of clean energy integration, hybrid energy storage systems (HESS), which are capable of smoothing power output, have garnered increasing attention. The dual active bridge converter, known for achieving electrical isolation and soft-switching capability, is commonly employed in HESS. To broaden the voltage gain range and reduce the current ripple on the energy storage device side, this paper proposes a novel HESS topology based on a current-fed bidirectional resonant converter. Firstly, the converter topology and its equivalent circuit are presented. Its switching modes and operational principles are analyzed, leading to the derivation of an equivalent circuit model, a voltage gain expression, and the characteristics of the low-voltage-side current ripple. Subsequently, a decoupling control strategy is proposed. This strategy independently controls the power transfer of the super capacitor and the battery by adjusting the duty cycle of the corresponding full bridge on each energy storage side. The power share of each port is dynamically regulated according to the power allocation command. Simulation results verify that the proposed system achieves zero voltage switching (ZVS) for all switches and exhibits fast dynamic response along with good stability during load transitions and power command changes.

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杨鸿庭,顾玲,杨飞,赵大伟.基于双向直流谐振变换器的混合储能系统及其控制策略[J].电力工程技术,2026,45(1):51-61. YANG Hongting, GU Ling, YANG Fei, ZHAO Dawei. A hybrid energy storage system and its control strategy based on a bidirectional resonant converter[J]. Electric Power Engineering Technology,2026,45(1):51-61.

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历史
  • 收稿日期:2025-06-20
  • 最后修改日期:2025-09-19
  • 在线发布日期: 2026-02-02
  • 出版日期: 2026-01-28
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