Fuzzy soft deep deterministic policy gradient for distribution-static synchronous compensation of distribution networks

被引:0
|
作者
Huang, Linjie [1 ]
Yin, Linfei [1 ]
机构
[1] Guangxi Univ, Sch Elect Engn, Nanning 530004, Guangxi, Peoples R China
基金
中国国家自然科学基金;
关键词
Distribution-static synchronous compensation; Soft actor-critic; Deep deterministic policy gradient; Voltage stabilization; REINFORCEMENT; IMPLEMENTATION; STABILITY; STATCOM; VOLTAGE; SYSTEMS;
D O I
10.1016/j.engappai.2024.109485
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
To address power quality issues in distribution networks, static synchronous compensation, also known as distribution-static synchronous compensation (D-STATCOM), has been included. The D-STATCOM control effect has an impact on the electromagnetic interference of distribution networks. However, the current D-STATCOM control method is slightly inadequate. To administer D-STATCOM, a fuzzy soft deep deterministic policy gradient (FSDDPG) organization mission fuzzy controller, soft actor-critic (SAC), and deep deterministic policy gradient (DDPG) is developed. The FSDDPG improves the corrosion resistance and generalization ability of D-STATCOM. The FSDDPG applies the advantages of fuzzy controller, SAC, and DDPG to complement each other and improves control performances. The FSDDPG scheme is implemented in the 415 V environment to verify feasibility and reliability. Compared with SAC, DDPG, twin-delayed deep deterministic policy gradient, proximal policy optimization, trust Region Policy Optimization, and proportional-integral methods, the FSDDPG scheme has the best performances for reactive power compensation, direct current side voltage of D-STATCOM, and active power adjustment.
引用
收藏
页数:17
相关论文
共 50 条
  • [1] Compensation Control of UAV Based on Deep Deterministic Policy Gradient
    Xu, Zijun
    Qi, Juntong
    Wang, Mingming
    Wu, Chong
    Yang, Guang
    2022 41ST CHINESE CONTROL CONFERENCE (CCC), 2022, : 2289 - 2296
  • [2] Cascade distribution static synchronous compensator for impulse load compensation in the distribution network
    Fan, Rui-Xiang
    Wu, Su-Nong
    Sun, Min
    Song, Qiang
    Dianji yu Kongzhi Xuebao/Electric Machines and Control, 2011, 15 (02): : 48 - 53
  • [3] Coordinated Optimization of Active Distribution Network Based on Deep Deterministic Policy Gradient Algorithm
    Gong J.
    Liu Y.
    Dianli Xitong Zidonghua/Automation of Electric Power Systems, 2020, 44 (06): : 113 - 120
  • [4] Application of cascaded H-bridge distribution-static synchronous series compensator in electrical distribution system power flow control
    Saradarzadeh, M.
    Farhangi, S.
    Schanen, J. L.
    Jeannin, P-O.
    Frey, D.
    IET POWER ELECTRONICS, 2012, 5 (09) : 1660 - 1675
  • [5] A multiagent deep deterministic policy gradient-based distributed protection method for distribution network
    Zeng, Peng
    Cui, Shijie
    Song, Chunhe
    Wang, Zhongfeng
    Li, Guangye
    NEURAL COMPUTING & APPLICATIONS, 2023, 35 (03): : 2267 - 2278
  • [6] A multiagent deep deterministic policy gradient-based distributed protection method for distribution network
    Peng Zeng
    Shijie Cui
    Chunhe Song
    Zhongfeng Wang
    Guangye Li
    Neural Computing and Applications, 2023, 35 : 2267 - 2278
  • [7] Collaborative temperature control of deep deterministic policy gradient and fuzzy PID
    Wu M.
    Wang X.-L.
    Jiang Y.-D.
    Zhong L.
    Mo F.-Y.
    Kongzhi Lilun Yu Yingyong/Control Theory and Applications, 2022, 39 (12): : 2358 - 2365
  • [8] A Novel Compensation Technology of Static Synchronous Compensator Integrated With Distribution Transformer
    Wang, Cunping
    Yin, Xianggen
    Zhang, Zhe
    Wen, Minghao
    IEEE TRANSACTIONS ON POWER DELIVERY, 2013, 28 (02) : 1032 - 1039
  • [9] DDRCN: Deep Deterministic Policy Gradient Recommendation Framework Fused with Deep Cross Networks
    Gao, Tianhan
    Gao, Shen
    Xu, Jun
    Zhao, Qihui
    APPLIED SCIENCES-BASEL, 2023, 13 (04):
  • [10] A gradient method for fuzzy analysis of water distribution networks
    Moosavian, Naser
    JOURNAL OF HYDRAULIC RESEARCH, 2021, 59 (01) : 148 - 157