Abstract:Currently, the main topologies for high-voltage, high-capacity AC-AC converters, such as the back-to-back modular multilevel converter (BTB-MMC) and the modular multilevel matrix converter (M3C), still face challenges, including a large number of submodules, high capacitor requirements, low power density, and complex decoupling control. This paper proposes an isolated half-wave shaping-based multilevel AC-AC converter (IHWS-MAC) that leverages half-wave shaping and half-wave frequency conversion. The proposed topology employs half-wave commutation units and dual active half-bridges to improve power density. By introducing half-wave commutation units, the topology converts the multilevel half-waves into sinusoidal full-wave outputs, significantly reducing the number of submodules required in multilevel units. The nested integration of dual active half-bridge (DAHB) high-frequency isolation units with the multilevel submodules enables the isolation units to store and release energy from the submodule capacitors on both sides through power regulation, thereby ensuring energy balance within the multilevel units. Moreover, this nested configuration helps reduce the number of capacitors and power devices. Then, a multi-objective overall control strategy is proposed for the IHWS-MAC, encompassing its input, isolation, and output stages. The strategy achieves coordinated control of power, voltage, and current on both the low-frequency and line-frequency sides, ensuring voltage stabilization and balance of the internal submodule capacitors. An IHWS-MAC system was built on the RT-Lab platform. Experiments were conducted under conditions of power disturbances and low-frequency side-grid voltage dips. The waveforms, including submodule capacitor voltages, grid-side AC voltages and currents, active and reactive power, and multilevel sinusoidal half-wave and full-wave voltages on both sides, were recorded. The results show that, under power or voltage disturbances, the IHWS-MAC maintains stable capacitor voltages while achieving inter-phase and intra-phase voltage balancing. The changes in AC currents on both sides are consistent with the power regulation processes at the input and output stages. Moreover, under the control of the commutation switches, the multilevel sinusoidal half-waves generated by the multilevel units on both sides at their respective system frequencies are synthesized into complete sinusoidal waveforms at the AC ports. The following conclusions can be drawn: the IHWS-MAC topology reduces the number of submodules, capacitors, and power devices, thereby improving power density. It also eliminates circulating currents and addresses issues with arm-capacitor energy balancing. Furthermore, featuring two DC links, it naturally decouples the AC-DC power conversion on both sides, while the integrated DAHB provides additional control degrees of freedom for flexible voltage and power regulation. In summary, the IHWS-MAC offers advantages in power density and control flexibility, providing a new solution for multilevel AC-AC conversion systems.
孙玉巍, 常泽宇, 付超, 陈琪, 辛耀光. 隔离型半波整形多电平AC-AC换流器拓扑及控制策略[J]. 电工技术学报, 2026, 41(18): 6214-6226.
Sun Yuwei, Chang Zeyu, Fu Chao, Chen Qi, Xin Yaoguang. Topology and Control Strategy of Isolated Half-Wave Shaping Based Multilevel AC-AC Converter. Transactions of China Electrotechnical Society, 2026, 41(18): 6214-6226.
[1] 徐殿国, 李彬彬, 周少泽. 模块化多电平高压变频技术研究综述[J]. 电工技术学报, 2017, 32(20): 104-116. Xu Dianguo, Li Binbin, Zhou Shaoze.Overview of the modular multilevel converter based high voltage motor drive[J]. Transactions of China Electrotech- nical Society, 2017, 32(20): 104-116. [2] 高晨景, 陈武晖, 张庚午, 等. 海上风电低频外送系统故障穿越分析[J]. 电工技术学报, 2026, 41(5): 1637-1652. Gao Chenjing, Chen Wuhui, Zhang Gengwu, et al.Fault ride-through analysis of offshore wind power low-frequency transmission system[J]. 2026, 41(5): 1637-1652. [3] 张国驹, 裴玮, 杨鹏, 等. 中压配电网柔性互联设备的电路拓扑与控制技术综述[J]. 电力系统自动化, 2023, 47(6): 18-29. Zhang Guoju, Pei Wei, Yang Peng, et al.Review on circuit topology and control technology of flexible interconnection devices for medium-voltage distri- bution network[J]. Automation of Electric Power Systems, 2023, 47(6): 18-29. [4] 喻恒凝, 姚良忠, 程帆, 等. 重力储能在新型电力系统中应用: 前景及挑战[J]. 中国电机工程学报, 2025, 45(18): 7177-7192. Yu Hengning, Yao Liangzhong, Cheng Fan, et al.Prospects and challenges of gravity energy storage applications in new type power system[J]. Pro- ceedings of the CSEE, 2025, 45(18): 7177-7192. [5] 赵崇滨, 姜齐荣, 冯海全, 等. 基于MMC的背靠背异步联网系统宽频带频率耦合阻抗模型及小信号稳定性分析[J]. 中国电机工程学报, 2023, 43(10): 3691-3704. Zhao Chongbin, Jiang Qirong, Feng Haiquan, et al.Frequency-coupling impedance model and small- signal stability analysis of the MMC-based back- to-back asynchronous grid interconnection system[J]. Proceedings of the CSEE, 2023, 43(10): 3691-3704. [6] 符楠, 刘宝, 徐云飞, 等. 基于双端构网型控制的海上风电柔性低频输送系统[J/OL]. 中国电机工程学报, 1-14[2025-12-02]. https://link.cnki.net/urlid/11.2107.TM.20250820.1420.026. Fu Nan, Liu Bao, Xu Yunfei, et al. Flexible low- frequency transmission system for offshore wind power based on dual-terminal networked control[J/OL]. Proceedings of the CSEE, 1-14[2025-12-02]. https://link.cnki.net/urlid/11.2107.TM.20250820.1420.026. [7] Liu Shenquan, Wang Xifan, Wang Biyang, et al.Comparison between back-to-back MMC and M3C as high power AC/AC converters[C]//2016 IEEE PES Asia-Pacific Power and Energy Engineering Con- ference (APPEEC), Xi’an, China, 2016: 671-676. [8] 吴小丹, 李建春, 董云龙, 等. 面向低频海上风电送出的模块化多电平矩阵变换器综合解耦控制策略[J]. 中国电机工程学报, 2023, 43(8): 3177-3190. Wu Xiaodan, Li Jianchun, Dong Yunlong, et al.Comprehensive decoupling control strategy for modular multilevel matrix converter for low frequency offshore wind power transmission[J]. Proceedings of the CSEE, 2023, 43(8): 3177-3190. [9] Xu Jianzhong, Wang Junxin, Yang Yukun, et al.Optimal suppression strategy for capacitor voltage ripples of hybrid MMCs under unbalanced grid voltages[J]. IEEE Transactions on Power Delivery, 2023, 38(1): 244-254. [10] 王锐, 王毅, 杨晗菲, 等. 具有宽运行范围的混合复用型模块化多电平拓扑及其能量均衡控制策略[J]. 电工技术学报, 2025, 40(15): 4740-4754. Wang Rui, Wang Yi, Yang Hanfei, et al.A hybrid multiplexing MMC topology with wide operating range and energy balance control strategy[J]. Transactions of China Electrotechnical Society, 2025, 40(15): 4740-4754. [11] Fan Shiyuan, Chen Cong, Yang Heya, et al.A cost-effective and DC-fault tolerant alternate arm converter with wide range voltage adaptability[J]. IEEE Journal of Emerging and Selected Topics in Power Electronics, 2022, 10(6): 6673-6686. [12] Feldman R, Tomasini M, Amankwah E, et al.A hybrid modular multilevel voltage source converter for HVDC power transmission[J]. IEEE Transactions on Industry Applications, 2013, 49(4): 1577-1588. [13] Adam G P, Abdelsalam I A, Ahmed K H, et al.Hybrid multilevel converter with cascaded H-bridge cells for HVDC applications: operating principle and scala- bility[J]. IEEE Transactions on Power Electronics, 2015, 30(1): 65-77. [14] 李宇薇, 王毅, 高玉华, 等. 桥臂复用模块化多电平变流器单极接地故障无闭锁穿越及能量均衡[J]. 电工技术学报, 2025, 40(1): 190-202. Li Yuwe, Wang Yi, Gao Yuhua, et al.Pole-to-ground fault riding-through and energy balance of arm- multiplexing modular multilevel converter[J]. Trans- actions of China Electrotechnical Society, 2025, 40(1): 190-202. [15] Hao Zeyu, Lan Jianxi, Chen Wu, et al.Topology and control of a novel multiplexing arm selection modular multilevel converter[J]. IEEE Journal of Emerging and Selected Topics in Power Electronics, 2025, 13(4): 4893-4908. [16] 高玉华, 王琛, 王毅, 等. 基于半波交替的轻型化MMC拓扑及控制策略[J]. 电力系统自动化, 2023, 47(17): 149-159. Gao Yuhua, Wang Chen, Wang Yi, et al.Topology and control strategy of light-weight modular multi- level converter with half-wave alternating[J]. Auto- mation of Electric Power Systems, 2023, 47(17): 149-159. [17] Huang Ming, Li Weilin, Zou Jianlong, et al.Analysis and design of a novel hybrid modular multilevel converter with time-sharing alternative arm con- verter[J]. IEEE Transactions on Industrial Electronics, 2024, 71(1): 14-26. [18] 孙玉巍, 陶聪, 付超, 等. 半波整形模块化多电平换流器动态建模及多目标控制策略[J]. 电工技术学报, 2025, 40(6): 1864-1877. Sun Yuwei, Tao Cong, Fu Chao, et al.Dynamic model and multi-objective control strategy of half- wave shaping based modular multilevel converter[J]. Transactions of China Electrotechnical Society, 2025, 40(6): 1864-1877. [19] Alaei R, Ali Khajehoddin S, Xu W.Sparse AC/AC modular multilevel converter[J]. IEEE Transactions on Power Delivery, 2016, 31(3): 1195-1202. [20] Sun Yuwei, Wang Shengce, Fu Chao, et al.Control strategy for asymmetric faults on the low-frequency side of a sparse modular multilevel converter[J]. Electronics, 2025, 14(3): 426. [21] 贾锋, 王麒铭, 张雅君, 等. 基于柔性低频输电风电系统的变电压运行控制方法[J]. 电力系统自动化, 2024, 48(21): 38-48. Jia Feng, Wang Qiming, Zhang Yajun, et al.Variable- voltage operation control method for wind power system with flexible low-frequency transmission[J]. Automation of Electric Power Systems, 2024, 48(21): 38-48. [22] 郑涛, 康恒. 基于控保协同的柔性低频输电系统电流差动保护性能提升方案[J]. 电工技术学报, 2025 40(7): 2162-2177. 23 Zheng Tao, Kang Heng.Improvement of current differential protection performance of flexible low- frequency transmission system based on control and protection cooperation[J]. Transactions of China Electrotechnical Society, 2025, 40(7): 2162-2177. [23] 胡鹏飞, 朱乃璇, 江道灼, 等. 柔性互联智能配电网关键技术研究进展与展望[J]. 电力系统自动化, 2021, 45(8): 1-12. Hu Pengfei, Zhu Naixuan, Jiang Daozhuo, et al.Research progress and prospects of key technologies of flexible interconnected smart distribution net- work[J]. Automation of Electric Power Systems, 2021, 45(8): 1-12. [24] Li Yan, Zhu Huan, Wang Qingshan, et al.Grid- connected modeling and dynamic characteristics analysis of gravity energy storage system based on permanent magnet synchronous generator-motor[J]. IEEE Access, 2025, 13: 151338-151346. [25] 于德, 付超, 王毅, 等. 隔离型双向直流变换器的最小回流功率移相控制方法[J]. 电工技术学报, 2017, 32(24): 126-138. Yu De, Fu Chao, Wang Yi, et al.The phase-shifted control method of isolated bidirectional DC-DC converter with minimum backflow power[J]. Trans- actions of China Electrotechnical Society, 2017, 32(24): 126-138. [26] 安峰, 杨柯欣, 王嵩, 等. 基于模型前馈的双有源全桥DC-DC变换器电流应力优化方法[J]. 电工技术学报, 2019, 34(14): 2946-2956. An Feng, Yang Kexin, Wang Song, et al.Current stress optimized scheme with model-based feedfor- ward for dual-active-bridge DC-DC converters[J]. Transactions of China Electrotechnical Society, 2019, 34(14): 2946-2956.