Mechanism and Technical Path of Active Grid-forming of New Type Power System

被引:0
|
作者
Wang Q. [1 ]
Zhang Z. [1 ]
Guo J. [1 ]
Yu P. [1 ]
Ma J. [2 ]
Guo Y. [1 ]
Zhao M. [1 ]
Li S. [1 ]
机构
[1] College of Electric Power, Shanxi University, Shanxi Province, Taiyuan
[2] School of Electrical and Information, University of Sydney, Sydney
关键词
cluster operation; inertia support; network construction capability; new energy grid connection; primary frequency modulation;
D O I
10.13334/j.0258-8013.pcsee.221449
中图分类号
学科分类号
摘要
With the development of a new generation of "double-high" power systems, the new energy grid-connected conversion system has gradually evolved from a grid-connected type to a grid-connected type. When the new energy units are running in clusters, the grid connection situation will be more complicated. The grid construction capability of the converter needs to be studied urgently, and it is also an important mission for the transformation of electric power. Based on the globality of the internal and external forms of the grid-connected system and the limitations of the performance analysis of the traditional grid-connected conversion system, this paper re-reveals the support mechanism of the grid-connected converter's active grid construction. First, the virtual synchronization technology and network construction mechanism are briefly reviewed. Then, three key technical issues, such as the modeling of cluster grid-connected system, the coupling interaction of multi-machine cluster grid-connected operation, and the energy storage configuration and operation boundary supporting the grid construction capability, are deeply studied. Finally, technical path discussions and judgments are made for the above three key technical issues. The idea of this paper is to attract others and lay a preliminary work for the formation of a systematic theory and practical method suitable for the grid-connected operation of new energy clusters in the future. © 2024 Chin.Soc.for Elec.Eng.
引用
收藏
页码:504 / 516
页数:12
相关论文
共 61 条
  • [1] Opinions on Improving the System,Mechanism and Policy Measures for Energy Green and Low-Carbon Transformation(Fa Gai Energy[2022] No.206)
  • [2] XIE Xiaorong, HE Jingbo, MAO Hangyin, New issues and classification of power system stability with high shares of renewables and power electronics[J], Proceedings of the CSEE, 41, 2, pp. 461-475, (2021)
  • [3] WANG Qi, Robustness analysis and optimal control of LCL grid-connected converter under complex grid conditions, (2020)
  • [4] HU Yongjun, WU Jian, HU Ruishan, Internal logic and development path of the "Two Mountains" theory for ecological civilization construction[J], Strategic Study of CAE, 21, 5, pp. 151-158, (2019)
  • [5] WEN Yunfeng, YANG Weifeng, WANG Ronghua, Review and prospect of toward 100% renewable energy power systems[J], Proceedings of the CSEE, 40, 6, pp. 1843-1856, (2020)
  • [6] PATTABIRAMAN D, LASSETER R H, JAHNS T M., Comparison of grid following and grid forming control for a high inverter penetration power system[C], 2018 IEEE Power & Energy Society General Meeting(PESGM), (2018)
  • [7] XU Jieyi, Wei LIU, LIU Shu, Current situation and development trend of power system converter construction control technology[J], Power System Technology, 46, 9, pp. 3586-3594, (2022)
  • [8] ZHONG Qingchang, WEISS G, Synchronverters :inverters that mimic synchronous generators[J], IEEE Transactions on Industrial Electronics, 58, 4, pp. 1259-1267, (2011)
  • [9] YUAN Hao, YUAN Xiaoming, Jiabing HU, Modeling of grid-connected VSCs for power system small-signal stability analysis in DC-link voltage control timescale[J], IEEE Transactions on Power Systems, 32, 5, pp. 3981-3991, (2017)
  • [10] Jia LIU, MIURA Y,, BEVRANI H, A unified modeling method of virtual synchronous generator for multi-operation-mode analyses[J], IEEE Journal of Emerging and Selected Topics in Power Electronics, 9, 2, pp. 2394-2409, (2021)