Droop Control in DQ Coordinates for Fixed Frequency Inverter-Based AC Microgrids

This paper presents a proof-of-concept for a novel dq droop control technique that applies DC droop control methods to fixed frequency inverter-based AC microgrids using the dq0 transformation. Microgrids are usually composed of distributed generation units (DGUs) that are electronically coupled to...

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Main Authors: Mohamed Toub, Mehrzad M. Bijaieh, Wayne W. Weaver, Rush D. Robinett, Mohamed Maaroufi, Ghassane Aniba
Format: Article
Language:English
Published: MDPI AG 2019-10-01
Series:Electronics
Subjects:
Online Access:https://www.mdpi.com/2079-9292/8/10/1168
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spelling doaj-f9d7623ad24d4171b4d0ea54bc02da3f2020-11-25T01:27:06ZengMDPI AGElectronics2079-92922019-10-01810116810.3390/electronics8101168electronics8101168Droop Control in DQ Coordinates for Fixed Frequency Inverter-Based AC MicrogridsMohamed Toub0Mehrzad M. Bijaieh1Wayne W. Weaver2Rush D. Robinett3Mohamed Maaroufi4Ghassane Aniba5Mohammadia School of Engineering, Mohammed V University of Rabat, Rabat 10080, MoroccoMechanical Engineering Department, Michigan Technological University, Houghton, MI 49931, USAMechanical Engineering Department, Michigan Technological University, Houghton, MI 49931, USAMechanical Engineering Department, Michigan Technological University, Houghton, MI 49931, USAMohammadia School of Engineering, Mohammed V University of Rabat, Rabat 10080, MoroccoMohammadia School of Engineering, Mohammed V University of Rabat, Rabat 10080, MoroccoThis paper presents a proof-of-concept for a novel dq droop control technique that applies DC droop control methods to fixed frequency inverter-based AC microgrids using the dq0 transformation. Microgrids are usually composed of distributed generation units (DGUs) that are electronically coupled to each other through power converters. An inherent property of inverter-based microgrids is that, unlike microgrids with spinning machines, the frequency of the parallel-connected DGUs is a global variable independent from the output power since the inverters can control the output waveform frequency with a high level of precision. Therefore, conventional droop control methods that distort the system frequency are not suitable for microgrids operating at a fixed frequency. It is shown that the proposed distributed droop control allows accurate sharing of the active and reactive power without altering the microgrid frequency. The simulation and hardware-in-the-loop (HIL) results are presented to demonstrate the efficacy of the proposed droop control. Indeed, following a load change, the dq droop controller was able to share both active and reactive power between the DGUs, whereas maintaining the microgrid frequency deviation at 0% and the bus voltage deviations below 6% of their respective nominal values.https://www.mdpi.com/2079-9292/8/10/1168active and reactive power-sharingdroop controlhardware-in-the-loopmicrogridsreference frame transformation
collection DOAJ
language English
format Article
sources DOAJ
author Mohamed Toub
Mehrzad M. Bijaieh
Wayne W. Weaver
Rush D. Robinett
Mohamed Maaroufi
Ghassane Aniba
spellingShingle Mohamed Toub
Mehrzad M. Bijaieh
Wayne W. Weaver
Rush D. Robinett
Mohamed Maaroufi
Ghassane Aniba
Droop Control in DQ Coordinates for Fixed Frequency Inverter-Based AC Microgrids
Electronics
active and reactive power-sharing
droop control
hardware-in-the-loop
microgrids
reference frame transformation
author_facet Mohamed Toub
Mehrzad M. Bijaieh
Wayne W. Weaver
Rush D. Robinett
Mohamed Maaroufi
Ghassane Aniba
author_sort Mohamed Toub
title Droop Control in DQ Coordinates for Fixed Frequency Inverter-Based AC Microgrids
title_short Droop Control in DQ Coordinates for Fixed Frequency Inverter-Based AC Microgrids
title_full Droop Control in DQ Coordinates for Fixed Frequency Inverter-Based AC Microgrids
title_fullStr Droop Control in DQ Coordinates for Fixed Frequency Inverter-Based AC Microgrids
title_full_unstemmed Droop Control in DQ Coordinates for Fixed Frequency Inverter-Based AC Microgrids
title_sort droop control in dq coordinates for fixed frequency inverter-based ac microgrids
publisher MDPI AG
series Electronics
issn 2079-9292
publishDate 2019-10-01
description This paper presents a proof-of-concept for a novel dq droop control technique that applies DC droop control methods to fixed frequency inverter-based AC microgrids using the dq0 transformation. Microgrids are usually composed of distributed generation units (DGUs) that are electronically coupled to each other through power converters. An inherent property of inverter-based microgrids is that, unlike microgrids with spinning machines, the frequency of the parallel-connected DGUs is a global variable independent from the output power since the inverters can control the output waveform frequency with a high level of precision. Therefore, conventional droop control methods that distort the system frequency are not suitable for microgrids operating at a fixed frequency. It is shown that the proposed distributed droop control allows accurate sharing of the active and reactive power without altering the microgrid frequency. The simulation and hardware-in-the-loop (HIL) results are presented to demonstrate the efficacy of the proposed droop control. Indeed, following a load change, the dq droop controller was able to share both active and reactive power between the DGUs, whereas maintaining the microgrid frequency deviation at 0% and the bus voltage deviations below 6% of their respective nominal values.
topic active and reactive power-sharing
droop control
hardware-in-the-loop
microgrids
reference frame transformation
url https://www.mdpi.com/2079-9292/8/10/1168
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