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浙江大学学报(工学版)  2026, Vol. 60 Issue (10): 2087-2098    DOI: 10.3785/j.issn.1008-973X.2026.10.002
电气工程     
新能源直流电压环暂态稳定机理与影响因素分析
国显烨1(),杨滢2,华文2,赵乐冰2,董炜2,王冠中1,*()
1. 山东大学 电气工程学院,山东 济南 250061
2. 国网浙江省电力有限公司电力科学研究院,浙江 杭州 310014
Analysis of transient stability mechanism and influencing factors of DC voltage loop for renewable energy sources
Xianye GUO1(),Ying YANG2,Wen HUA2,Lebing ZHAO2,Wei DONG2,Guanzhong WANG1,*()
1. College of Electrical Engineering, Shandong University, Jinan 250061, China
2. State Grid Zhejiang Electric Power Research Institute, Hangzhou 310014, China
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摘要:

为了研究电网运行方式及设备控制参数对直流电压环主导的新能源设备暂态电压稳定性的影响,并揭示其与锁相环(PLL)主导的暂态电压稳定问题在作用机理上的差异,建立以直流侧电压和交流侧d轴电流为状态变量的二阶机理模型,用以描述直流电压控制主导的暂态稳定过程. 借鉴同步机同步转矩分析思想,解析评估电网运行方式与直流电压外环控制参数对系统暂态电压稳定性的影响规律. 基于相平面法对比分析直流电压外环与锁相环主导的2类暂态稳定问题的稳定边界条件. 通过电磁暂态仿真验证全阶模型下理论分析的正确性. 研究结果表明,在弱电网条件下,电压扰动更易引发直流电压环主导的暂态电压失稳,而锁相环主导下的失稳风险相对较低. 可见,在电网电压扰动场景下,直流电压环主导的暂态电压稳定问题较锁相环主导的同步稳定问题更为突出.

关键词: 新能源暂态电压稳定直流电压环同步转矩相平面    
Abstract:

The impact of grid operating conditions and control parameters on the transient voltage stability of renewable energy sources dominated by the DC voltage control loop was investigated. The mechanistic distinctions between this issue and the Phase-Locked Loop (PLL) dominated transient voltage stability problem were further clarified. To achieve these objectives, a second-order analytical model was established, in which the DC-link voltage and the d-axis current on the AC side were selected as state variables to characterize the transient process governed by DC voltage control. Inspired by the synchronizing torque analysis method for synchronous generators, an analytical approach was developed to assess the influence rules of grid operating conditions and the outer-loop DC voltage controller parameters on transient voltage stability. Furthermore, the stability boundaries for the two distinct instability modes, dominated by the DC voltage loop and the PLL, respectively, were compared using the phase-plane analysis method. Finally, the validity of the theoretical analysis was confirmed through electromagnetic transient (EMT) simulations based on a full-order detailed model. The results demonstrated that under weak grid conditions, voltage disturbances were more likely to induce transient voltage instability dominated by the DC voltage control loop, while the risk of PLL-dominated instability was relatively lower. Consequently, during grid voltage disturbances, the stability risk associated with the DC voltage control loop was more critical than that related to the PLL synchronization stability.

Key words: renewable energy sources    transient voltage stability    DC voltage loop    synchronous torque    phase plane
收稿日期: 2025-12-03 出版日期: 2026-07-28
CLC:  TP 393  
基金资助: 国网浙江省电力有限公司科技项目(B311DS24000X);山东省自然科学基金资助项目(ZR2024QE012).
通讯作者: 王冠中     E-mail: guoxianye.sdu@163.com;eewgz@sdu.edu.cn
作者简介: 国显烨(2002—),男,硕士生,从事新能源电压稳定控制研究. orcid.org/0009-0002-5534-7039. E-mail:guoxianye.sdu@163.com
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引用本文:

国显烨,杨滢,华文,赵乐冰,董炜,王冠中. 新能源直流电压环暂态稳定机理与影响因素分析[J]. 浙江大学学报(工学版), 2026, 60(10): 2087-2098.

Xianye GUO,Ying YANG,Wen HUA,Lebing ZHAO,Wei DONG,Guanzhong WANG. Analysis of transient stability mechanism and influencing factors of DC voltage loop for renewable energy sources. Journal of ZheJiang University (Engineering Science), 2026, 60(10): 2087-2098.

链接本文:

https://www.zjujournals.com/eng/CN/10.3785/j.issn.1008-973X.2026.10.002        https://www.zjujournals.com/eng/CN/Y2026/V60/I10/2087

图 1  变流器主电路及控制系统拓扑图
图 2  同步机主电路及转子动态拓扑图
图 3  同步转矩与功角曲线的关系
图 4  不同网侧阻抗下等效同步系数随电压的变化曲线
图 5  不同d/q轴电流下等效同步系数随电压的变化曲线
图 6  不同比例/积分增益等效阻尼系数随电压的变化曲线
图 7  2种不同控制环节动态的对比
图 8  不同电压扰动及电网强度下直流电压控制的相轨迹
图 9  不同电网强度下锁相环同步控制的相轨迹
图 10  不同比例增益和积分增益下直流电压控制的相轨迹
图 11  不同电网强度下直流及交流侧电气量的波形
图 12  不同电压扰动下直流及交流侧电气量的波形
图 13  不同设备侧参数下直流及交流侧电气量的波形
图 14  不同故障持续时间下直流及交流侧电气量的波形
图 15  不同网侧参数下的故障临界切除时间
图 16  2种主导模式下的直流侧和交流侧电气量波形
1 陈文溆乐, 向月, 彭光博, 等 “双碳”目标下电力系统供给侧形态发展系统动力学建模与分析[J]. 上海交通大学学报, 2021, 55 (12): 1567- 1576
CHEN Wenxule, XIANG Yue, PENG Guangbo, et al System dynamic modeling and analysis of power system supply side morphological development with dual carbon targets[J]. Journal of Shanghai Jiao Tong University, 2021, 55 (12): 1567- 1576
doi: 10.16183/j.cnki.jsjtu.2021.294
2 王绪利, 徐冉, 程啸, 等 基于系统动力学的高比例新能源配电网形态演化模型研究[J]. 太阳能学报, 2025, 46 (8): 709- 716
WANG Xuli, XU Ran, CHENG Xiao, et al Research on morphology evolution model of distribution network with high-proportion new energy based on system dynamics[J]. Acta Energiae Solaris Sinica, 2025, 46 (8): 709- 716
doi: 10.19912/j.0254-0096.tynxb.2024-0700
3 张闻韬. 考虑新能源多出力场景安全约束的短路限流方法及应急重构技术研究 [D]. 杭州: 浙江大学, 2024.
ZHANG Wentao. Research on short-circuit current limiting method and emergency reconfiguration technique considering security constraints on multi-output scenarios of renewable resources [D]. Hangzhou: Zhejiang University, 2024.
4 刘昕宇. 含高比例新能源的直流送端电网暂态电压安全稳定分析与控制 [D]. 杭州: 浙江大学, 2024.
LIU Xinyu. Transient voltage security and stability analysis and control of sending AC grid of HVDC system with high-penetration renewable energy [D]. Hangzhou: Zhejiang University, 2024.
5 徐式蕴, 彭龙, 孙华东, 等 高比例新能源电力系统暂态电压失稳形态及机理[J]. 中国电机工程学报, 2026, 46 (1): 1- 16
XU Shiyun, PENG Long, SUN Huadong, et al The transient voltage instability forms and evolution process in high-penetration renewable energy power systems[J]. Proceedings of the CSEE, 2026, 46 (1): 1- 16
doi: 10.13334/j.0258-8013.pcsee.250860
6 李萌, 姚增慧, 包博, 等 “双高”电力系统暂态电压稳定新问题综述与展望[J]. 中国电机工程学报, 2026, 46 (2): 462- 477
LI Meng, YAO Zenghui, BAO Bo, et al Review and prospect of new transient voltage stability issues in power systems with high proportion of renewables and power electronics[J]. Proceedings of the CSEE, 2026, 46 (2): 462- 477
doi: 10.13334/j.0258-8013.pcsee.242329
7 孙华东, 周孝信, 李若梅 感应电动机负荷参数对电力系统暂态电压稳定性的影响[J]. 电网技术, 2005, 29 (23): 1- 6
SUN Huadong, ZHOU Xiaoxin, LI Ruomei Influence of induction motor load parameters on power system transient voltage stability[J]. Power System Technology, 2005, 29 (23): 1- 6
8 李子恒, 王康, 李琦, 等 基于转速-电压坐标平面的暂态电压稳定分析[J]. 电力自动化设备, 2023, 43 (1): 202- 208
LI Ziheng, WANG Kang, LI Qi, et al Transient voltage stability analysis based on speed-voltage coordinate plane[J]. Electric Power Automation Equipment, 2023, 43 (1): 202- 208
doi: 10.16081/j.epae.202204054
9 程慧婕, 帅智康, 彭也伦, 等 含异步机负荷的虚拟同步机并联系统暂态电压稳定性分析及其提升措施研究[J]. 中国电机工程学报, 2021, 41 (14): 4787- 4798
CHENG Huijie, SHUAI Zhikang, PENG Yelun, et al Study on transient voltage stability and improvement measures of paralleled virtual synchronous generators system with induction motors[J]. Proceedings of the CSEE, 2021, 41 (14): 4787- 4798
doi: 10.13334/j.0258-8013.pcsee.200869
10 CHEN J, MILANO F, O’DONNELL T Assessment of grid-feeding converter voltage stability[J]. IEEE Transactions on Power Systems, 2019, 34 (5): 3980- 3982
doi: 10.1109/TPWRS.2019.2920516
11 刘昕宇, 单永鹏, 辛焕海, 等. 基于直流电压控制的新能源并网系统暂态电压稳定性分析[EB/OL]. [2026−03−26]. https://doi.org/10.19595/j.cnki.1000-6753.tces.250731.
12 康勇, 林新春, 郑云, 等 新能源并网变换器单机无穷大系统的静态稳定极限及静态稳定工作区[J]. 中国电机工程学报, 2020, 40 (14): 4506- 4515
KANG Yong, LIN Xinchun, ZHENG Yun, et al The static stable-limit and static stable-working zone for single-machine infinite-bus system of renewable-energy grid-connected converter[J]. Proceedings of the CSEE, 2020, 40 (14): 4506- 4515
doi: 10.13334/j.0258-8013.pcsee.190906
13 康勇, 林新春, 潘辰, 等 弱电网下采用SVC与SVG补偿后新能源并网变换器的功率传输特性分析[J]. 中国电机工程学报, 2021, 41 (6): 2115- 2124
KANG Yong, LIN Xinchun, PAN Chen, et al Analysis of power transmission characteristics of renewable energy grid-connected converter considering SVC and SVG compensation under weak grid condition[J]. Proceedings of the CSEE, 2021, 41 (6): 2115- 2124
doi: 10.13334/j.0258-8013.pcsee.200514
14 赵兵, 吴萍, 蒋彦翃, 等 响应驱动的新型电力系统暂态稳定判别方法综述[J]. 电网技术, 2025, 49 (7): 2633- 2648
ZHAO Bing, WU Ping, JIANG Yanhong, et al A survey on response-driven transient stability determination of new generation of power system[J]. Power System Technology, 2025, 49 (7): 2633- 2648
15 汤涌 基于响应的电力系统广域安全稳定控制[J]. 中国电机工程学报, 2014, 34 (29): 5041- 5050
TANG Yong Response-based wide area control for power system security and stability[J]. Proceedings of the CSEE, 2014, 34 (29): 5041- 5050
doi: 10.13334/j.0258-8013.pcsee.2014.29.005
16 徐艳春, 蒋伟俊, 汪平, 等 考虑暂态电压稳定的含高渗透率风光的电网动态无功规划方法[J]. 电力自动化设备, 2022, 42 (8): 79- 88
XU Yanchun, JIANG Weijun, WANG Ping, et al Dynamic reactive power planning method for power grid with high permeability wind power and photovoltaic considering transient voltage stability[J]. Electric Power Automation Equipment, 2022, 42 (8): 79- 88
doi: 10.16081/j.epae.202207007
17 杜步阳, 邵德军, 朱建行, 等 电压源型变流器并网系统多时间尺度间相互作用[J]. 电工技术学报, 2023, 38 (20): 5547- 5559
DU Buyang, SHAO Dejun, ZHU Jianhang, et al The interaction between multiple timescales of the grid-tied voltage source converter[J]. Transactions of China Electrotechnical Society, 2023, 38 (20): 5547- 5559
doi: 10.19595/j.cnki.1000-6753.tces.221496
18 马锐. 锁相型变换器并网系统非线性建模与暂态同步稳定分析 [D]. 武汉: 华中科技大学, 2023.
MA Rui. Nonlinear modeling and transient synchronous stability analysis of PLL-based VSC systems [D]. Wuhan: Huazhong University of Science and Technology, 2023.
19 HU Q, FU L, MA F, et al Large signal synchronizing instability of PLL-based VSC connected to weak AC grid[J]. IEEE Transactions on Power Systems, 2019, 34 (4): 3220- 3229
doi: 10.1109/TPWRS.2019.2892224
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