Study and modelling of droop-controlled islanded mesh microgrids
The active and reactive power sharing of distributed generation sources (DGs) connected to isolated microgrids with a single point of common coupling (mono-PCC) to which the loads are also connected has already been the subject of several studies. A high penetration rate of DGs based on renewable en...
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Format: | Article |
Language: | English |
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EDP Sciences
2021-01-01
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Series: | E3S Web of Conferences |
Online Access: | https://www.e3s-conferences.org/articles/e3sconf/pdf/2021/56/e3sconf_icsf2021_05015.pdf |
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author | Hennane Youssef Berdai Abdelmajid Pierfederici Serge Meibody-Tabar Farid Kuznetsov Vitaliy |
author_facet | Hennane Youssef Berdai Abdelmajid Pierfederici Serge Meibody-Tabar Farid Kuznetsov Vitaliy |
author_sort | Hennane Youssef |
collection | DOAJ |
description | The active and reactive power sharing of distributed generation sources (DGs) connected to isolated microgrids with a single point of common coupling (mono-PCC) to which the loads are also connected has already been the subject of several studies. A high penetration rate of DGs based on renewable energies has as a logical consequence the development and implementation of mesh and more complex multi- PCC microgrids. In this paper, a developed droop control method for synchronization and power sharing between different DGs connected to a mesh islanded multi-PCC microgrid with many distributed generation sources (DGs) and different type of loads (including active load (CPL)) randomly connected to different PCCs is applied. Then, a state model of the entire mesh microgrid is developed integrating the generators with their controllers, power lines, droop algorithms and dynamic loads. This model is then used to study the asymptotic stability and robustness properties of the system. The simulation results confirm the effectiveness of the applied strategies for the synchronization of the different DGs to the microgrid while ensuring an efficient active and reactive power sharing. also, they confirm the validity of the developed state space model of the system. |
first_indexed | 2024-12-17T21:13:26Z |
format | Article |
id | doaj.art-d209b12d355c4f2a81428d679eabf2a4 |
institution | Directory Open Access Journal |
issn | 2267-1242 |
language | English |
last_indexed | 2024-12-17T21:13:26Z |
publishDate | 2021-01-01 |
publisher | EDP Sciences |
record_format | Article |
series | E3S Web of Conferences |
spelling | doaj.art-d209b12d355c4f2a81428d679eabf2a42022-12-21T21:32:24ZengEDP SciencesE3S Web of Conferences2267-12422021-01-012800501510.1051/e3sconf/202128005015e3sconf_icsf2021_05015Study and modelling of droop-controlled islanded mesh microgridsHennane YoussefBerdai Abdelmajid0Pierfederici Serge1Meibody-Tabar Farid2Kuznetsov Vitaliy3CEDoc Sciences de l’Ingénieur ENSEM, LESE, Route d’El JadidaCEDoc Sciences de l’Ingénieur ENSEM, LESE, Route d’El JadidaUniversité de LorraineNational Metallurgical Academy of Ukraine, Department of the electrical engineering and electromechanicsThe active and reactive power sharing of distributed generation sources (DGs) connected to isolated microgrids with a single point of common coupling (mono-PCC) to which the loads are also connected has already been the subject of several studies. A high penetration rate of DGs based on renewable energies has as a logical consequence the development and implementation of mesh and more complex multi- PCC microgrids. In this paper, a developed droop control method for synchronization and power sharing between different DGs connected to a mesh islanded multi-PCC microgrid with many distributed generation sources (DGs) and different type of loads (including active load (CPL)) randomly connected to different PCCs is applied. Then, a state model of the entire mesh microgrid is developed integrating the generators with their controllers, power lines, droop algorithms and dynamic loads. This model is then used to study the asymptotic stability and robustness properties of the system. The simulation results confirm the effectiveness of the applied strategies for the synchronization of the different DGs to the microgrid while ensuring an efficient active and reactive power sharing. also, they confirm the validity of the developed state space model of the system.https://www.e3s-conferences.org/articles/e3sconf/pdf/2021/56/e3sconf_icsf2021_05015.pdf |
spellingShingle | Hennane Youssef Berdai Abdelmajid Pierfederici Serge Meibody-Tabar Farid Kuznetsov Vitaliy Study and modelling of droop-controlled islanded mesh microgrids E3S Web of Conferences |
title | Study and modelling of droop-controlled islanded mesh microgrids |
title_full | Study and modelling of droop-controlled islanded mesh microgrids |
title_fullStr | Study and modelling of droop-controlled islanded mesh microgrids |
title_full_unstemmed | Study and modelling of droop-controlled islanded mesh microgrids |
title_short | Study and modelling of droop-controlled islanded mesh microgrids |
title_sort | study and modelling of droop controlled islanded mesh microgrids |
url | https://www.e3s-conferences.org/articles/e3sconf/pdf/2021/56/e3sconf_icsf2021_05015.pdf |
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