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Low Loss Submodule Cluster for Modular Multilevel Converters Suitable for Implementation with SiC MOSFETs
KTH, School of Electrical Engineering and Computer Science (EECS), Electrical Engineering, Electric Power and Energy Systems. (Power Electronics)ORCID iD: 0000-0001-5521-4135
KTH, School of Electrical Engineering and Computer Science (EECS), Electrical Engineering, Electric Power and Energy Systems.ORCID iD: 0000-0001-6381-638X
KTH, School of Electrical Engineering and Computer Science (EECS), Electrical Engineering, Electric Power and Energy Systems.ORCID iD: 0000-0002-6998-3258
KTH, School of Electrical Engineering and Computer Science (EECS), Electrical Engineering, Electric Power and Energy Systems.ORCID iD: 0000-0002-8565-4753
Show others and affiliations
2019 (English)In: Proceedings IEEE Energy Conversion Congress and Exposition 2019, IEEE, 2019Conference paper, Published paper (Refereed)
Abstract [en]

In this paper, a novel submodule cluster topologyfor modular multilevel converters is proposed. The cluster iscomposed of an arbitrary amount of submodule segments. Dependingon the amount of capacitors in the cluster, the converterconduction losses can be reduced significantly. The topologyenables electronic protection against explosion, thus, reducingthe requirements for submodule bypass equipment. Implicationsfor the converter operation and functionality are investigated anda wireless control scheme is proposed.

Place, publisher, year, edition, pages
IEEE, 2019.
Series
IEEE Energy Conversion Congress and Exposition, E-ISSN 2329-3748
National Category
Other Electrical Engineering, Electronic Engineering, Information Engineering
Identifiers
URN: urn:nbn:se:kth:diva-266791DOI: 10.1109/ECCE.2019.8913183ISI: 000520543707028Scopus ID: 2-s2.0-85076778956OAI: oai:DiVA.org:kth-266791DiVA, id: diva2:1387699
Conference
IEEE Energy Conversion Congress and Exposition - IEEE-ECCE 2019, Baltimore, MD, Sept. 29 – Oct. 3, 2019
Note

QC 20200122

Part of ISBN 978-1-7281-0395-2, 978-1-7281-0396-9

Available from: 2020-01-22 Created: 2020-01-22 Last updated: 2024-10-25Bibliographically approved
In thesis
1. Main Circuits, Submodules, and Auxiliary Power Concepts for Converters in HVDC Grids
Open this publication in new window or tab >>Main Circuits, Submodules, and Auxiliary Power Concepts for Converters in HVDC Grids
2020 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

In order to enable the massive introduction of renewable energies the need for high-voltage direct current (HVDC) grids is anticipated. Large, globally interconnected HVDC networks will likely be the most cost-efficient means to balance electricity demand and available generation. In a meshed system it is important to ensure reliability, robustness, failure management, and fast protection of equipment. In case of a failure somewhere in the grid, the remaining system must be kept operational. State-of-the-art converter implementations are either not adapted to future system requirements or lead to increased losses, cost, and converter footprint. Therefore, this thesis examines several aspects of how to improve the HVDC converter design and functionality with the ultimate aim of developing reliable, highly efficient, cost-effective, more compact and lightweight converters.

Advancements are made on several levels of the converter hardware hierarchy. Main circuits, submodule (SM) topologies, and auxiliary power supply (APS) concepts are investigated and new solutions are proposed. On main-circuit level, different voltage-source converters (VSCs) are evaluated in terms of their energy storage elements. This is useful to compare the physical volume of capacitors required by each topology and, thus, to address the need to develop more compact converter stations. The theoretical analysis indicates that the required energy storage of the alternate arm converter (AAC) is smaller compared to the modular multilevel converter (MMC).

On SM level, new topologies are evaluated with the goal to find topologies, which enable efficient handling of dc-side short circuits, reduction of power loss, and lower SM capacitance. The semi-full-bridge (SFB) SM is identified as one of the most promising topologies from this point of view and is investigated in detail. A control concept for capacitor balancing and several options for improved operation of the SFB are presented. Furthermore, a novel SM cluster topology is proposed which features low conduction losses and increased protection against explosion.

The availability of a reliable APS system is crucial for equipment in future HVDC grids. Therefore, APS solutions are investigated considering design complexity, reliable performance, and power consumption. This thesis presents a novel combined optical power and data transmission concept which is tailored to the specific requirements of HVDC converters employing high-voltage (HV) silicon carbide (SiC) devices. The proposed concept offers a robust solution for isolated APS and signal transmission across any voltage barrier.

Place, publisher, year, edition, pages
Stockholm: KTH Royal Institute of Technology, 2020. p. 74
Series
TRITA-EECS-AVL ; 2020:41
Keywords
Ac–dc power conversion, energy storage, fault tolerance, HVDC converters, HVDC grid, isolated power supply, modular multilevel converter (MMC), power system faults, silicon carbide, submodules, voltage source converter (VSC)
National Category
Other Electrical Engineering, Electronic Engineering, Information Engineering
Research subject
Electrical Engineering
Identifiers
urn:nbn:se:kth:diva-279727 (URN)978-91-7873-630-0 (ISBN)
Public defence
2020-09-25, Ångdomen, Kungl Tekniska högskolans bibliotek, Osquars backe 31, Stockholm., 10:00 (English)
Opponent
Supervisors
Funder
SweGRIDS - Swedish Centre for Smart Grids and Energy Storage, CPC4
Note

QC 20200831

Available from: 2020-08-31 Created: 2020-08-28 Last updated: 2022-06-25Bibliographically approved
2. Silicon-Carbide-Based High-Voltage Submodules for HVDC Voltage-Source Converters
Open this publication in new window or tab >>Silicon-Carbide-Based High-Voltage Submodules for HVDC Voltage-Source Converters
2020 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

In order to transition to renewable energy sources and simultaneously meet the increasing demand for electrical energy, highly flexible and efficient grids are required. High-voltage direct-current (HVDC) transmission and grids are foreseen to be a vital part of the future electricity grid. Voltage source converters (VSCs), interfacing between HVDC and high-voltage alternating current (HVAC) technology, need to comply with grid code, and offer high reliability and cost efficiency. The state-of-the-art VSC topology is the modular multilevel converter (MMC), which offers tailored harmonic performance, modularity, fault handling, redundancy, and low losses.

This thesis investigates improvements for VSCs enabled by novel silicon carbide (SiC) power semiconductor devices. These devices feature lower losses, higher blocking voltage, and higher maximum operation temperature. However, a co-design of the different hardware levels (i.e., converter, submodule (SM), power device, and semiconductor) is required to unleash their full potential. The thesis features contributions on several of these hardware levels, aiming at improvements regarding defined technical requirements for VSCs.

It has been shown that, on converter level, future ultrahigh-voltage (UHV) SiC bipolar devices with blocking voltages of up to 50 kV have the potential for significant reduction of converter complexity, volume, and losses. The increased SM voltage is a challenge for internal fault handling, which can be met by a proposed novel SM feature, the discharge loop.

On SM level, additional improvements are enabled by synergies between power semiconductor device technology and SM topology. A comparative evaluation of a large variety of SM topologies in combination with different SiC power semiconductor device technologies identifies several promising design approaches for future SMs. An alternative to the state-of-the-art half-bridge and full-bridge SM is the semi-full-bridge, which is investigated intensively. It features lower switch count and lower losses compared to the full-bridge, while offering DC fault handling capability. Another topology, the double-connected double-zero SM, features additional conduction loss reduction in combination with SiC metal-oxide-semiconductor field-effect transistors (MOSFETs), which is enabled by parallel current paths during certain switching states. A SM cluster enhancing this effect is proposed.

Finally, results on the optimization of SiC PiN diodes via different charge carrier lifetime tailoring methods are presented. The target application is a high-voltage high-frequency LCC converter. In the future, such diodes will also be required as anti-parallel diodes for novel UHV bipolar SiC devices, as bootstrap diodes in gate drivers, and as a part of snubber circuits.

Place, publisher, year, edition, pages
Stockholm: KTH Royal Institute of Technology, 2020. p. 91
Series
TRITA-EECS-AVL ; 2020:56
Keywords
Silicon carbide, HVDC converters, voltage source converters, modular multilevel converters, submodule topologies, metal-oxide-semiconductor field-effect transistor (MOSFET), insulated-gate bipolar-transistor (IGBT), power semiconductor devices, high-voltage
National Category
Electrical Engineering, Electronic Engineering, Information Engineering
Research subject
Electrical Engineering
Identifiers
urn:nbn:se:kth:diva-284797 (URN)978-91-7873-678-2 (ISBN)
Public defence
2020-11-27, Online via Zoom, Ångdomen, Kungl. Tekniska högskolans bibliotek, Osquars backe 31, Stockholm, 10:00 (English)
Opponent
Supervisors
Funder
SweGRIDS - Swedish Centre for Smart Grids and Energy Storage, CP17
Note

QC 20201104

Available from: 2020-11-04 Created: 2020-11-03 Last updated: 2022-06-25Bibliographically approved

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Jacobs, KeijoHeinig, StefanieCiftci, BarisNorrga, StaffanNee, Hans-Peter

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