Robust load frequency control for networked power system with renewable energy via fractional‐order global sliding mode control

Abstract Owing to random load changes and transmission time delays in interconnected power systems with renewable energy, the load frequency control scheme has become one of the main methods to keep stability and security of power systems. To relieve communication burden and increase network utilisa...

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Main Authors: Xinxin Lv, Yonghui Sun, Wenqiang Hu, Venkata Dinavahi
Format: Article
Language:English
Published: Wiley 2021-04-01
Series:IET Renewable Power Generation
Online Access:https://doi.org/10.1049/rpg2.12088
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spelling doaj-79ace3d29d6a4eb1864553dbb35ed62c2021-08-02T08:20:28ZengWileyIET Renewable Power Generation1752-14161752-14242021-04-011551046105710.1049/rpg2.12088Robust load frequency control for networked power system with renewable energy via fractional‐order global sliding mode controlXinxin Lv0Yonghui Sun1Wenqiang Hu2Venkata Dinavahi3College of Energy and Electrical Engineering Hohai University Nanjing 210098 ChinaCollege of Energy and Electrical Engineering Hohai University Nanjing 210098 ChinaSchool of Electrical Engineering Southeast University Nanjing 210096 ChinaDepartment of Electrical and Computer Engineering University of Alberta Edmonton T6G 2V4 CanadaAbstract Owing to random load changes and transmission time delays in interconnected power systems with renewable energy, the load frequency control scheme has become one of the main methods to keep stability and security of power systems. To relieve communication burden and increase network utilisation, an adaptive event‐triggered scheme is explored. Then, a new fractional‐order global sliding mode control scheme comprising the fractional‐order term in the sliding surface is adopted to improve robustness of load frequency control. The fractional‐order term generates a new degree of freedom and more adjustable parameters to improve control performance. Furthermore, the Markov theory is applied in the modelling process to better describe the uncertainty of parameters and external disturbances. The stability and stabilisation criteria for multi‐area power systems load frequency control are put forward by employing the improved Lyapunov function and integral inequalities with auxiliary functions. Finally, two simulation examples containing a two‐area power system and modified IEEE 39‐bus New England test power system with three wind farms are presented to investigate the effectiveness of the proposed method.https://doi.org/10.1049/rpg2.12088
collection DOAJ
language English
format Article
sources DOAJ
author Xinxin Lv
Yonghui Sun
Wenqiang Hu
Venkata Dinavahi
spellingShingle Xinxin Lv
Yonghui Sun
Wenqiang Hu
Venkata Dinavahi
Robust load frequency control for networked power system with renewable energy via fractional‐order global sliding mode control
IET Renewable Power Generation
author_facet Xinxin Lv
Yonghui Sun
Wenqiang Hu
Venkata Dinavahi
author_sort Xinxin Lv
title Robust load frequency control for networked power system with renewable energy via fractional‐order global sliding mode control
title_short Robust load frequency control for networked power system with renewable energy via fractional‐order global sliding mode control
title_full Robust load frequency control for networked power system with renewable energy via fractional‐order global sliding mode control
title_fullStr Robust load frequency control for networked power system with renewable energy via fractional‐order global sliding mode control
title_full_unstemmed Robust load frequency control for networked power system with renewable energy via fractional‐order global sliding mode control
title_sort robust load frequency control for networked power system with renewable energy via fractional‐order global sliding mode control
publisher Wiley
series IET Renewable Power Generation
issn 1752-1416
1752-1424
publishDate 2021-04-01
description Abstract Owing to random load changes and transmission time delays in interconnected power systems with renewable energy, the load frequency control scheme has become one of the main methods to keep stability and security of power systems. To relieve communication burden and increase network utilisation, an adaptive event‐triggered scheme is explored. Then, a new fractional‐order global sliding mode control scheme comprising the fractional‐order term in the sliding surface is adopted to improve robustness of load frequency control. The fractional‐order term generates a new degree of freedom and more adjustable parameters to improve control performance. Furthermore, the Markov theory is applied in the modelling process to better describe the uncertainty of parameters and external disturbances. The stability and stabilisation criteria for multi‐area power systems load frequency control are put forward by employing the improved Lyapunov function and integral inequalities with auxiliary functions. Finally, two simulation examples containing a two‐area power system and modified IEEE 39‐bus New England test power system with three wind farms are presented to investigate the effectiveness of the proposed method.
url https://doi.org/10.1049/rpg2.12088
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AT yonghuisun robustloadfrequencycontrolfornetworkedpowersystemwithrenewableenergyviafractionalorderglobalslidingmodecontrol
AT wenqianghu robustloadfrequencycontrolfornetworkedpowersystemwithrenewableenergyviafractionalorderglobalslidingmodecontrol
AT venkatadinavahi robustloadfrequencycontrolfornetworkedpowersystemwithrenewableenergyviafractionalorderglobalslidingmodecontrol
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