Transient Stability Analysis of a Multi-Machine Power System Integrated with Renewables

The impact on the stability of power systems is rising as the penetration level of renewable energy with sporadic natures rises rapidly on the grid. However, the impact of different types of renewable energy sources (wind, solar) and their combination on system stability varies even with the same pe...

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Bibliographic Details
Main Authors: Agarala, A. (Author), Bhat, S.S (Author), Mitra, A. (Author), Sowa, P. (Author), Zychma, D. (Author)
Format: Article
Language:English
Published: MDPI 2022
Subjects:
Online Access:View Fulltext in Publisher
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020 |a 19961073 (ISSN) 
245 1 0 |a Transient Stability Analysis of a Multi-Machine Power System Integrated with Renewables 
260 0 |b MDPI  |c 2022 
856 |z View Fulltext in Publisher  |u https://doi.org/10.3390/en15134824 
520 3 |a The impact on the stability of power systems is rising as the penetration level of renewable energy with sporadic natures rises rapidly on the grid. However, the impact of different types of renewable energy sources (wind, solar) and their combination on system stability varies even with the same penetration level. This paper concentrates mainly on the stability analysis of multi-machine systems connected to various types of renewable energy sources. The study presents a simple and novel control technique named automatic reactive power support (ARS) for both single and combinations of renewable sources by injecting the available reactive power into the system during fault through converters to enhance system stability. The permanent magnet synchronous generator (PMSG) and doubly fed induction generator (DFIG) are both considered as wind generators in this paper for comparison. In addition, transient stability enhancement is carried out by improving critical clearing time of a three-phase fault in the power system. With the creation of a 3-phase fault at various buses, stability analysis is carried out on the 9-bus WSCC test bus system and also on the 68-bus IEEE test system. Comparative analysis of six test case conditions is provided and the considered cases are without renewable source, with DFIG as a wind generator, PMSG as a wind generator, solar PV farm, wind farm with DFIG and solar PV in combination and the combination of wind farm with PMSG and solar PV. Moreover, the improvement in critical clearing time of the system is compared using conventional and proposed controls with all the aforementioned renewable sources. Comparative results show that the proposed control technique improves system stability and also that the combination of renewable energy sources ought to enhance the critical clearing time of system. © 2022 by the authors. Licensee MDPI, Basel, Switzerland. 
650 0 4 |a Asynchronous generators 
650 0 4 |a DFIG 
650 0 4 |a Doubly fed induction generators 
650 0 4 |a Electric fault currents 
650 0 4 |a Electric machine control 
650 0 4 |a Electric power system control 
650 0 4 |a Electric power system stability 
650 0 4 |a Electric utilities 
650 0 4 |a multi-machine system and reactive power control 
650 0 4 |a Multi-machine system and reactive power control 
650 0 4 |a Multimachine systems 
650 0 4 |a Permanent magnet synchronous generator 
650 0 4 |a Permanent magnets 
650 0 4 |a PMSG 
650 0 4 |a Power control 
650 0 4 |a Reactive power 
650 0 4 |a Reactive power control 
650 0 4 |a Renewable energy source 
650 0 4 |a Renewable sources 
650 0 4 |a solar PV 
650 0 4 |a Solar PVs 
650 0 4 |a Synchronous generators 
650 0 4 |a System's stabilities 
650 0 4 |a Transient analysis 
650 0 4 |a transient stability 
650 0 4 |a Wind farm 
650 0 4 |a Wind generator systems 
700 1 |a Agarala, A.  |e author 
700 1 |a Bhat, S.S.  |e author 
700 1 |a Mitra, A.  |e author 
700 1 |a Sowa, P.  |e author 
700 1 |a Zychma, D.  |e author 
773 |t Energies