A New Hybrid Dual Active Bridge Modular Multilevel Based DC–DC Converter for HVDC Networks

Multi-terminal high voltage DC transmission currently represents a leading technology in long-distance power transmission systems. Among the main technical challenges facing such technology, DC fault isolation, permitting different grounding schemes, providing interoperability, and high DC voltage s...

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Main Authors: Mohamed Ashraf, Yousef Nazih, Fahad Alsokhiry, Khaled H. Ahmed, Ayman S. Abdel-Khalik, Yusuf Al-Turki
Format: Article
Language:English
Published: IEEE 2021-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9409038/
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spelling doaj-986f9772e3da451eb611a865a6af72a42021-04-28T23:00:16ZengIEEEIEEE Access2169-35362021-01-019620556207310.1109/ACCESS.2021.30745439409038A New Hybrid Dual Active Bridge Modular Multilevel Based DC–DC Converter for HVDC NetworksMohamed Ashraf0https://orcid.org/0000-0002-3281-459XYousef Nazih1https://orcid.org/0000-0001-7440-3986Fahad Alsokhiry2https://orcid.org/0000-0001-7140-6591Khaled H. Ahmed3https://orcid.org/0000-0002-7912-8140Ayman S. Abdel-Khalik4https://orcid.org/0000-0001-5162-4954Yusuf Al-Turki5Department of Engineering Mathematics and Physics, Alexandria University, Alexandria, EgyptDepartment of Electrical Engineering, Alexandria University, Alexandria, EgyptDepartment of Electrical and Computer Engineering, Faculty of Engineering, King Abdulaziz University, Jeddah, Saudi ArabiaDepartment of Electronic and Electrical Engineering, University of Strathclyde, Glasgow, U.K.Department of Electrical Engineering, Alexandria University, Alexandria, EgyptDepartment of Electrical and Computer Engineering, Faculty of Engineering, King Abdulaziz University, Jeddah, Saudi ArabiaMulti-terminal high voltage DC transmission currently represents a leading technology in long-distance power transmission systems. Among the main technical challenges facing such technology, DC fault isolation, permitting different grounding schemes, providing interoperability, and high DC voltage stepping between different HVDC networks, and allowing high-speed power reversal without power interruption especially when connecting the pre-existing voltage source converters (VSC) and line commutated converters (LCC)-based HVDC networks. This paper introduces a new modular multilevel converter (MMC) based front-to-front DC-DC converter to interconnect two different types (LCC/VSC) of HVDC networks. The proposed topology comprises a voltage source MMC (VS-MMC) and a current source MMC (CS-MMC), while both are coupled via an AC link including the isolating transformer. The proposed topology can successfully provide an uninterruptible bi-directional power flow, high DC voltage stepping with a DC fault blocking capability, and low number of semiconductors due to the usage of only half-bridge SMs. The system design is provided with a detailed mathematical analysis. Furthermore, two active power control methodologies are proposed and compared. The first control technique is simpler and entails lower passive elements, while the second technique ensures a zero reactive power over the full range of active power flow. Furthermore, Losses analysis and comparison are provided between the two proposed control techniques. Finally, Control-Hardware-in-the-Loop (CHiL) test validation is employed to confirm the validity of the proposed system under healthy as well as different fault scenarios.https://ieeexplore.ieee.org/document/9409038/Modular multilevel converterdc-dc power convertersHVDCpower controlbidirectional power flowcontrol-hardware-in-the-loop (CHiL)
collection DOAJ
language English
format Article
sources DOAJ
author Mohamed Ashraf
Yousef Nazih
Fahad Alsokhiry
Khaled H. Ahmed
Ayman S. Abdel-Khalik
Yusuf Al-Turki
spellingShingle Mohamed Ashraf
Yousef Nazih
Fahad Alsokhiry
Khaled H. Ahmed
Ayman S. Abdel-Khalik
Yusuf Al-Turki
A New Hybrid Dual Active Bridge Modular Multilevel Based DC–DC Converter for HVDC Networks
IEEE Access
Modular multilevel converter
dc-dc power converters
HVDC
power control
bidirectional power flow
control-hardware-in-the-loop (CHiL)
author_facet Mohamed Ashraf
Yousef Nazih
Fahad Alsokhiry
Khaled H. Ahmed
Ayman S. Abdel-Khalik
Yusuf Al-Turki
author_sort Mohamed Ashraf
title A New Hybrid Dual Active Bridge Modular Multilevel Based DC–DC Converter for HVDC Networks
title_short A New Hybrid Dual Active Bridge Modular Multilevel Based DC–DC Converter for HVDC Networks
title_full A New Hybrid Dual Active Bridge Modular Multilevel Based DC–DC Converter for HVDC Networks
title_fullStr A New Hybrid Dual Active Bridge Modular Multilevel Based DC–DC Converter for HVDC Networks
title_full_unstemmed A New Hybrid Dual Active Bridge Modular Multilevel Based DC–DC Converter for HVDC Networks
title_sort new hybrid dual active bridge modular multilevel based dc–dc converter for hvdc networks
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2021-01-01
description Multi-terminal high voltage DC transmission currently represents a leading technology in long-distance power transmission systems. Among the main technical challenges facing such technology, DC fault isolation, permitting different grounding schemes, providing interoperability, and high DC voltage stepping between different HVDC networks, and allowing high-speed power reversal without power interruption especially when connecting the pre-existing voltage source converters (VSC) and line commutated converters (LCC)-based HVDC networks. This paper introduces a new modular multilevel converter (MMC) based front-to-front DC-DC converter to interconnect two different types (LCC/VSC) of HVDC networks. The proposed topology comprises a voltage source MMC (VS-MMC) and a current source MMC (CS-MMC), while both are coupled via an AC link including the isolating transformer. The proposed topology can successfully provide an uninterruptible bi-directional power flow, high DC voltage stepping with a DC fault blocking capability, and low number of semiconductors due to the usage of only half-bridge SMs. The system design is provided with a detailed mathematical analysis. Furthermore, two active power control methodologies are proposed and compared. The first control technique is simpler and entails lower passive elements, while the second technique ensures a zero reactive power over the full range of active power flow. Furthermore, Losses analysis and comparison are provided between the two proposed control techniques. Finally, Control-Hardware-in-the-Loop (CHiL) test validation is employed to confirm the validity of the proposed system under healthy as well as different fault scenarios.
topic Modular multilevel converter
dc-dc power converters
HVDC
power control
bidirectional power flow
control-hardware-in-the-loop (CHiL)
url https://ieeexplore.ieee.org/document/9409038/
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