Key Technologies and Challenges of Grid-forming Control for Flexible DC Transmission System

被引:0
|
作者
Ma X. [1 ]
Lu Y. [1 ]
Tian J. [1 ]
Wang N. [1 ]
机构
[1] NR Electric Co., Ltd., Nanjing
关键词
broadband resonance stability; flexible DC transmission; grid-forming control; synchronous motor; weak system;
D O I
10.7500/AEPS20220616006
中图分类号
学科分类号
摘要
With large-scale asynchronous power supply replacing some synchronous motors in the traditional power grids, the power supply structure and grid skeleton are changing, and the power system will face the problems of the weak system, low inertia and weak voltage support. The flexible DC transmission system with grid-forming control can simulate the operation characteristics of synchronous motors and play the role of power grid support while realizing power transmission. This paper introduces the application scenario and technical framework of grid-forming control for flexible DC transmission systems and analyzes the key technologies of grid-forming control applied to the flexible DC transmission system from three perspectives of the grid-connected performance evaluation, broadband resonance stability and transient stability. This paper summarizes and analyzes the challenges in the three aspects of control parameter design, over-current capacity of primary equipment and energy sources as well as several technical directions. © 2023 Automation of Electric Power Systems Press. All rights reserved.
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页码:1 / 11
页数:10
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  • [1] XIN Baoan, GUO Mingqun, WANG Shaowu, Et al., Friendly HVDC transmission technologies for large-scale renewable energy and their engineering practice, Automation of Electric Power Systems, 45, 22, pp. 1-8, (2021)
  • [2] LI Mingjie, Characteristic analysis and operational control of large-scale hybrid UHV AC/DC power grids, Power System Technology, 40, 4, pp. 985-991, (2016)
  • [3] XU Zheng, TU Qingrui, GUAN Minyuan, Flexible DC transmission system, (2013)
  • [4] ZHOU J Z, DING H, FAN S T, Et al., Impact of short-circuit ratio and phase-locked-loop parameters on the small-signal behavior of a VSC-HVDC converter, IEEE Transactions on Power Delivery, 29, 5, pp. 2287-2296, (2014)
  • [5] LU Xiaojun, XIANG Wang, LIN Weixing, Et al., Stability analysis and control parameter optimization for hybrid modular multilevel converter connected to weak AC system, Automation of Electric Power Systems, 44, 16, pp. 70-78, (2020)
  • [6] MAHAMEDI B, FLETCHER J E., The equivalent models of grid-forming inverters in the sequence domain for the steady-state analysis of power systems, IEEE Transactions on Power Systems, 35, 4, pp. 2876-2887, (2020)
  • [7] ROCABERT J, LUNA A, BLAABJERG F, Et al., Control of power converters in AC microgrids, IEEE Transactions on Power Electronics, 27, 11, pp. 4734-4749, (2012)
  • [8] RATHNAYAKE D B, AKRAMI M, PHURAILATPAM C, Et al., Grid forming inverter modeling, control, and applications, IEEE Access, 9, pp. 114781-114807, (2021)
  • [9] LI Qinghui, GE Pingjuan, XIAO Fan, Et al., Study on fault ride-through method of VSG based on power angle and current flexible regulation, Proceedings of the CSEE, 40, 7, pp. 2071-2080, (2020)
  • [10] National grid: grid code