Mohamed Mansour, Yousef N. Abdelaziz, Ahmed A. Aboushady, Fahad Alsokhiry, Khaled H. Ahmed, Ayman S. Abdel-khalik, Ahmed Abdulwhab
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The proposed converter enables power reversal without interruption, promotes multi-vendor interoperability, and provides galvanic isolation. An important aspect of the design is its modularity, allowing each port to have an independent design for interfacing with the HVDC/MVDC grid without affecting the other ports. This modularity enables further port extension or elimination without requiring modifications to the remaining ports. The paper also discusses AC filter design and power flow control techniques to achieve zero reactive power circulation at rated port power, thereby reducing power losses. Finally, to validate the theoretical claims of the proposed system, both a simulation model and an experimental hardware test rig have been established.</p>","PeriodicalId":56302,"journal":{"name":"IET Power Electronics","volume":"18 1","pages":""},"PeriodicalIF":1.7000,"publicationDate":"2025-05-06","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://onlinelibrary.wiley.com/doi/epdf/10.1049/pel2.70049","citationCount":"0","resultStr":"{\"title\":\"Hybrid IGBT/IGCT-Based DC-Hub for Interconnection of VSC/LCC Future DC Networks\",\"authors\":\"Mohamed Mansour, Yousef N. Abdelaziz, Ahmed A. Aboushady, Fahad Alsokhiry, Khaled H. Ahmed, Ayman S. Abdel-khalik, Ahmed Abdulwhab\",\"doi\":\"10.1049/pel2.70049\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>The interest in interconnecting multiple DC grids- medium-voltage direct current/high-voltage direct current (MVDC/HVDC)- across the globe has grown significantly in recent years. This interest is primarily driven by the benefits of increased reliability and cost efficiency in power transmission systems, particularly with the growing utilisation of renewable energy resources. However, some HVDC networks are based on line commutated converters (LCC), while other MVDC/HVDC rely on voltage source converters (VSC). In this context, this paper introduces a new DC-Hub that facilitates the interconnection between multiple VSC- and LCC-based DC networks using hybrid IGBT/IGCT device technology. The proposed converter enables power reversal without interruption, promotes multi-vendor interoperability, and provides galvanic isolation. An important aspect of the design is its modularity, allowing each port to have an independent design for interfacing with the HVDC/MVDC grid without affecting the other ports. This modularity enables further port extension or elimination without requiring modifications to the remaining ports. 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Hybrid IGBT/IGCT-Based DC-Hub for Interconnection of VSC/LCC Future DC Networks
The interest in interconnecting multiple DC grids- medium-voltage direct current/high-voltage direct current (MVDC/HVDC)- across the globe has grown significantly in recent years. This interest is primarily driven by the benefits of increased reliability and cost efficiency in power transmission systems, particularly with the growing utilisation of renewable energy resources. However, some HVDC networks are based on line commutated converters (LCC), while other MVDC/HVDC rely on voltage source converters (VSC). In this context, this paper introduces a new DC-Hub that facilitates the interconnection between multiple VSC- and LCC-based DC networks using hybrid IGBT/IGCT device technology. The proposed converter enables power reversal without interruption, promotes multi-vendor interoperability, and provides galvanic isolation. An important aspect of the design is its modularity, allowing each port to have an independent design for interfacing with the HVDC/MVDC grid without affecting the other ports. This modularity enables further port extension or elimination without requiring modifications to the remaining ports. The paper also discusses AC filter design and power flow control techniques to achieve zero reactive power circulation at rated port power, thereby reducing power losses. Finally, to validate the theoretical claims of the proposed system, both a simulation model and an experimental hardware test rig have been established.
期刊介绍:
IET Power Electronics aims to attract original research papers, short communications, review articles and power electronics related educational studies. The scope covers applications and technologies in the field of power electronics with special focus on cost-effective, efficient, power dense, environmental friendly and robust solutions, which includes:
Applications:
Electric drives/generators, renewable energy, industrial and consumable applications (including lighting, welding, heating, sub-sea applications, drilling and others), medical and military apparatus, utility applications, transport and space application, energy harvesting, telecommunications, energy storage management systems, home appliances.
Technologies:
Circuits: all type of converter topologies for low and high power applications including but not limited to: inverter, rectifier, dc/dc converter, power supplies, UPS, ac/ac converter, resonant converter, high frequency converter, hybrid converter, multilevel converter, power factor correction circuits and other advanced topologies.
Components and Materials: switching devices and their control, inductors, sensors, transformers, capacitors, resistors, thermal management, filters, fuses and protection elements and other novel low-cost efficient components/materials.
Control: techniques for controlling, analysing, modelling and/or simulation of power electronics circuits and complete power electronics systems.
Design/Manufacturing/Testing: new multi-domain modelling, assembling and packaging technologies, advanced testing techniques.
Environmental Impact: Electromagnetic Interference (EMI) reduction techniques, Electromagnetic Compatibility (EMC), limiting acoustic noise and vibration, recycling techniques, use of non-rare material.
Education: teaching methods, programme and course design, use of technology in power electronics teaching, virtual laboratory and e-learning and fields within the scope of interest.
Special Issues. Current Call for papers:
Harmonic Mitigation Techniques and Grid Robustness in Power Electronic-Based Power Systems - https://digital-library.theiet.org/files/IET_PEL_CFP_HMTGRPEPS.pdf