Friendly HVDC Transmission Technologies for Large-scale Renewable Energy and Their Engineering Practice

被引:0
作者
Xin B. [1 ]
Guo M. [2 ]
Wang S. [1 ]
Li X. [2 ]
机构
[1] State Grid Corporation of China, Beijing
[2] State Grid Economic and Technological Research Institute, Beijing
来源
| 1600年 / Automation of Electric Power Systems Press卷 / 45期
关键词
DC grid; Hybrid high voltage direct current; Line commutated converter based high voltage direct current; Novel power system; Renewable energy; Ultra-high voltage; Voltage source converter based high voltage direct current;
D O I
10.7500/AEPS20210302001
中图分类号
学科分类号
摘要
Along with the increasing demand for energy transition and rapid development of renewable energy, the energy structure and the power system structure are under reform in China. In order to adapt to the requirement of large-scale renewable energy transmission and construct a novel power system with renewable energy as the main body, research and application of flexible transmission technologies are in urgent demand. The significance of high voltage direct current (HVDC) technology based on power electronic equipment is getting more and more prominent. At present, practical HVDC technologies in China include line commutated converter based HVDC (LCC-HVDC) technology, voltage source converter based HVDC (VSC-HVDC) technology and hybrid HVDC technology. Based on the development and engineering practice of HVDC technologies in China, the key problems of HVDC transmission technologies for large-scale renewable energy in engineering application are summarized, and several technology directions are discussed, which provide reference for the development of renewable energy transmission technology. © 2021 Automation of Electric Power Systems Press.
引用
收藏
页码:1 / 8
页数:7
相关论文
共 18 条
  • [1] ZHAO Wanjun, High voltage direct current project technology, (2010)
  • [2] SHU Yinbiao, LIU Zehong, GAO Liying, Et al., A preliminary exploration for design of ±800kV UHVDC project with transmission capacity of 6400MW, Power System Technology, 30, 1, pp. 1-8, (2006)
  • [3] TANG Guangfu, HE Zhiyuan, PANG Hui, Research, application and development of VSC-HVDC engineering technology, Automation of Electric Power Systems, 37, 15, pp. 3-14, (2013)
  • [4] LIU Shan, YU Jun, HE Zhiyuan, Et al., Research on the topology and characteristic of multi-terminal HVDC based on VSC and LCC, Proceedings of the CSEE, 38, 10, pp. 2980-2988, (2018)
  • [5] LIU Zehong, GUO Xianshan, YUE Bo, Et al., System design of ±1100 kV/12000 MW UHVDC transmission project, Power System Technology, 42, 4, pp. 1023-1031, (2018)
  • [6] MA Jin, ZHAO Dawei, QIAN Minhui, Et al., Reviews of control technologies of large-scale renewable energy connected to weakly-synchronized sending-end DC power grid, Power System Technology, 41, 10, pp. 3112-3120, (2017)
  • [7] ZHENG Chao, TANG Yong, MA Shiying, Et al., A survey on typical scenarios and technology needs for HVDC participated into stability control, Proceedings of the CSEE, 34, 22, pp. 3750-3759, (2014)
  • [8] ZHOU Yingkun, XIE Heng, SUN Huadong, Et al., Research on the influence of renewable energy low voltage ride through control parameters on overvoltage, Power System Technology
  • [9] HAN Pingping, CHEN Lingqi, HU Di, Et al., Impact of transient overvoltage caused by DC block on wind power transmission and its suppression measure, Power System Protection and Control, 46, 5, pp. 99-105, (2018)
  • [10] XU Zheng, XIAO Huangqing, ZHANG Zheren, Et al., VSC-HVDC transmission system, (2016)