中国电力 ›› 2026, Vol. 59 ›› Issue (4): 47-58.DOI: 10.11930/j.issn.1004-9649.202507002

• 大规模水风光基地联合规划与广域互补运行优化技术 • 上一篇    下一篇

考虑频率和电压支撑强度的水风光综合基地直流外送能力评估

王潇笛1(), 张琳1(), 苏韵掣1(), 毕淑雅2(), 刘方1(), 文云峰2()   

  1. 1. 国网四川省电力公司经济技术研究院,四川 成都 610000
    2. 湖南大学 电气与信息工程学院,湖南 长沙 410082
  • 收稿日期:2025-07-03 发布日期:2026-04-20 出版日期:2026-04-28
  • 作者简介:
    王潇笛(1994),女,博士,工程师,从事枢纽电网承载能力研究,E-mail:414363359@qq.com
    文云峰(1986),男,通信作者,博士,教授,从事低惯量电力系统规划、运行与控制研究,E-mail:yunfeng.8681@163.com
  • 基金资助:
    国网四川省电力公司科技项目(521996240008)。

Evaluation of HVDC transmission capability for hydro-wind-solar hybrid power bases considering frequency and voltage support strength

WANG Xiaodi1(), ZHANG Lin1(), SU Yunche1(), BI Shuya2(), LIU Fang1(), WEN Yunfeng2()   

  1. 1. State Grid Sichuan Economic Research Institute, Chengdu 610000, China
    2. School of Electrical and Information Engineering, Hunan University, Changsha 410082, China
  • Received:2025-07-03 Online:2026-04-20 Published:2026-04-28
  • Supported by:
    This work is supported by the Science and Technology Project of State Grid Sichuan Electric Power Company (No.521996240008).

摘要:

大型水风光综合基地具有“源多-弱网-荷少”的基本特征,其大规模清洁能源经直流外送的能力与系统安全稳定紧密耦合。针对高比例新能源接入导致水风光综合基地频率、电压支撑能力弱化的难题,构建了一种计及频率和电压支撑强度的水风光综合基地直流外送能力评估模型。首先,在分析水风光综合基地直流外送能力限制因素的基础上,构建协同评估框架;然后,融合流域梯级水电水力-电力时空约束特性及水风光多能互补特性,建立以外送功率最大化为目标的直流外送能力评估模型。最后,通过量化系统频率响应能力及新能源多场站短路比,构建涵盖频率和电压支撑强度需求的安全约束体系,并采用二阶锥重构技术高效处理非线性频率约束,形成兼顾多能互补特性与系统安全强度的直流外送能力评估方法。基于改进的IEEE算例测试系统开展多场景仿真对比,验证了所提模型的有效性。

关键词: 直流输电, 水风光综合基地, 流域水电耦合, 最大输电能力, 频率电压耦合

Abstract:

Large-scale hydro-wind-solar integrated power bases exhibit the fundamental characteristics of multi-energy sources, weak grid structure, and limited local loads. Thus the transmission export capability of its large-scale clean energy through HVDC connection is severely subject to system security and stability. With regards to the issue of frequency/voltage support capabilities weakened by high penetration of renewable energy, this paper develops an HVDC transmission capability evaluation model incorporating frequency and voltage support strength. Firstly, a coordinated assessment framework is established based on the analysis of the constraints limiting HVDC transmission capabilities. Next, by integrating spatio-temporal hydraulic-electric constraints of river basin cascade hydropower generation and considering complementary operation of hydro-wind-PV energy resources, a transmission capacity optimization model with the objective of maximizing delivery power is formulated via mixed-integer second-order cone programming method. Finally, security constraint frameworks covering frequency/voltage support requirements are constructed by quantifying system frequency response capability and short-circuit ratios of multiple renewable plants. Furthermore, by taking advantage of second-order cone reconstruction techniques to efficiently process nonlinear frequency constraints, a transmission capacity evaluation methodology is then formulated which balances the multi-energy complementarity and system security requirements. Case studies on modified IEEE benchmark systems are conducted to validate the model's effectiveness through multi-scenario simulations.

Key words: HVDC transmission, hydro-wind-solar hybrid power base, cascade hydropower coupling, maximum transmission capability, frequency-voltage coupling


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