TY - JOUR
T1 - 基于模块化多电平矩阵换流器的柔性低频输电系统大信号稳定性分析
AU - Duan, Ziyue
AU - Meng, Yongqing
AU - Song, Boyang
AU - Wang, Tianyi
AU - Wang, Xiuli
AU - Wang, Xifan
N1 - Publisher Copyright:
© 2023 Science Press. All rights reserved.
PY - 2023/9/30
Y1 - 2023/9/30
N2 - In order to achieve the goal of “double-carbon” and promote energy transformation, achieving safe and reliable transmission of large-scale renewable energy such as offshore wind power has become a key research direction. The flexible low-frequency transmission system improves transmission capacity and saves economic costs by reducing transmission frequency, and gradually becomes a beneficial supplement to the traditional power frequency transmission and DC transmission. However, the stability of flexible low frequency transmission system, especially the stability of large signal, is still a difficult problem in engineering practice. In this paper, the Lyapunov direct method is used to analyze the large signal stability of flexible low-frequency transmission system based on modular multilevel matrix converter (M3C). Firstly, for the high order of the nonlinear state equation of the system makes it difficult to directly construct the energy function through experience or Jacobian matrix method of linear system, a fuzzy model is established by a sector nonlinear method, the system energy function is constructed concisely and quickly, and the large signal domain of attraction (LS-DOA) is calculated. Secondly, the mapping method of multi-dimensional space attraction region is introduced to reveal the influence of main circuit and control system parameters on the large signal stability of system more intuitively from the perspective of frequency difference. Then, combined with the convex optimization theory of linear matrix inequality (LMI), the relevant mechanism of large signal instability of the system is analyzed and an efficient stabilization strategy is given. Finally, the system model is established through MATLAB/Simulink, and the simulation verification of the theoretical analysis is realized, which is an important reference for the engineering practice of the flexible low-frequency transmission system.
AB - In order to achieve the goal of “double-carbon” and promote energy transformation, achieving safe and reliable transmission of large-scale renewable energy such as offshore wind power has become a key research direction. The flexible low-frequency transmission system improves transmission capacity and saves economic costs by reducing transmission frequency, and gradually becomes a beneficial supplement to the traditional power frequency transmission and DC transmission. However, the stability of flexible low frequency transmission system, especially the stability of large signal, is still a difficult problem in engineering practice. In this paper, the Lyapunov direct method is used to analyze the large signal stability of flexible low-frequency transmission system based on modular multilevel matrix converter (M3C). Firstly, for the high order of the nonlinear state equation of the system makes it difficult to directly construct the energy function through experience or Jacobian matrix method of linear system, a fuzzy model is established by a sector nonlinear method, the system energy function is constructed concisely and quickly, and the large signal domain of attraction (LS-DOA) is calculated. Secondly, the mapping method of multi-dimensional space attraction region is introduced to reveal the influence of main circuit and control system parameters on the large signal stability of system more intuitively from the perspective of frequency difference. Then, combined with the convex optimization theory of linear matrix inequality (LMI), the relevant mechanism of large signal instability of the system is analyzed and an efficient stabilization strategy is given. Finally, the system model is established through MATLAB/Simulink, and the simulation verification of the theoretical analysis is realized, which is an important reference for the engineering practice of the flexible low-frequency transmission system.
KW - flexible low frequency transmission
KW - frequency difference
KW - large signal stability analysis
KW - LMI convex optimization
KW - LS-DOA
KW - M3C
KW - sector nonlinear method
UR - https://www.scopus.com/pages/publications/85179855694
U2 - 10.13336/j.1003-6520.hve.20222114
DO - 10.13336/j.1003-6520.hve.20222114
M3 - 文章
AN - SCOPUS:85179855694
SN - 1003-6520
VL - 49
SP - 3741
EP - 3751
JO - Gaodianya Jishu/High Voltage Engineering
JF - Gaodianya Jishu/High Voltage Engineering
IS - 9
ER -