1. 新能源电力系统全国重点实验室(华北电力大学), 北京市 昌平区,102206
2. 国网经济技术研究院有限公司, 北京市 昌平区,102209
纸质出版:2025
移动端阅览
黄文轩, 熊小玲, 汪笑妮, 等. 大规模新能源经并联柔直送出系统中高低压阀组均压控制策略[J]. 中国电机工程学报, 2025,(24):9530-9540.
HUANG Wenxuan, XIONG Xiaoling, WANG Xiaoni, et al. Voltage Balancing Control Strategy of High and Low Voltage Valves in Large-scale Renewable Energy Transmission System Via Parallel VSC-HVDC[J]. 2025, (24): 9530-9540.
黄文轩, 熊小玲, 汪笑妮, 等. 大规模新能源经并联柔直送出系统中高低压阀组均压控制策略[J]. 中国电机工程学报, 2025,(24):9530-9540. DOI: 10.13334/j.0258-8013.pcsee.241179.
HUANG Wenxuan, XIONG Xiaoling, WANG Xiaoni, et al. Voltage Balancing Control Strategy of High and Low Voltage Valves in Large-scale Renewable Energy Transmission System Via Parallel VSC-HVDC[J]. 2025, (24): 9530-9540. DOI: 10.13334/j.0258-8013.pcsee.241179.
与单阀组方案相比,高低压串联阀组方案可以有效提高柔性直流输电的电压等级、系统传输容量等,但存在着阀组间直流电压失衡风险。对此,该文将大规模新能源经并联柔直送出系统在联网、孤岛等场景下统一建模为输入串联输出并联系统,并建立小信号模型分析,指出阀组直流电压失衡本质是具有恒功率特性的受端系统直流侧动态等效电阻呈现负阻特性,导致阀组等效电容、等效电阻间分流无法有效控制。因此,针对定P/Q控制的联网受端系统,提出一种无需阀组间通信的电压前馈补偿策略,以补偿受端负阻影响,控制阀组直流电压平衡;针对孤岛运行的受端系统,进一步分析常见构网协调控制优缺点,并提出一种更适用于高低压阀组孤岛运行的组合下垂控制,该策略无需阀组间通信且能实现功率自动合理分配,保证阀组直流电压均衡。最后,在PSCAD中建立仿真模型,仿真结果验证该文理论分析的正确性和所提控制策略的有效性。
Compared with the single valve groups
the high-and low-voltage valve groups can effectively improve the DC voltage level and system transmission capacity of voltage source converter based high voltage direct current (VSC-HVDC) but carry a risk of DC voltage imbalance. To solve this problem
this paper unifies the large-scale renewable energy transmission system models across different operational scenarios into an input-series output-parallel (ISOP) system. A small-signal model is established for analysis
revealing that the essence of DC voltage imbalance lies in the negative resistance characteristics on the DC side of the receiving system with constant power characteristics. This leads to ineffective control of the current distribution between the equivalent capacitance and resistance of the valve groups. Therefore
a voltage feedforward compensation control strategy without the communication system between the valve groups is proposed to compensate the negative resistance effect of the receiving end and control the DC voltage balance of the valve groups. For the islanded systems
this paper assesses common grid-forming coordinated controls and proposes a combined droop control strategy that is more suitable for the islanded operation of high- and low-voltage valve groups. This strategy without communication lines between the valve groups and enables automatic and reasonable power allocation
ensuring DC voltage equalization among the valve groups. Finally
the simulation model is built in PSCAD
and the simulation results verify the correctness of the theoretical analysis and the effectiveness of the proposed control strategy.
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