Master's Thesis: Simulation-Based Assessment of Fault Behavior and Protection Challenges in Medium-Voltage AC Distribution Networks with High Penetration of Inverter-Based Re-sources
På ABB hjälper vi industrier att bli snabbare, mer resurseffektiva och hållbara. Här är framsteg en självklarhet - för dig, ditt team och hela världen. Som global marknadsledare ger vi dig rätt förutsättningar för att lyckas med det. Det kommer inte alltid att vara enkelt - utveckling kräver mod och styrka. På ABB är du aldrig ensam. Run what runs the world.
Denna Position Rapporterar Till
R&D Team Lead
Your Role And Responsibilities
The increasing deployment of inverter-based resources (IBRs), such as photovoltaic systems, battery energy storage systems, and renewable generation, is fundamentally changing the fault behavior of medium voltage AC (MVAC) distribution networks. Unlike conventional synchronous generators, power electronic converters typically limit their fault current contribution, making fault characteristics highly dependent on converter control algorithms and operating conditions. In addition, bidirectional power flow introduced by distributed energy resources can challenge conventional protection schemes.
This Master’s thesis aims to investigate the fault behavior of grid-connected converters through simulation studies. The work will evaluate converter responses during different fault types, including phase-to-phase and ground faults, considering varying fault locations, converter locations, network strength, and grounding systems.
Particular focus will be placed on comparing grid-following and grid-forming control concepts and assessing how different control parameters influence fault current characteristics. Parameters of interest include current limits, fault ride-through settings, voltage and frequency control loops, virtual inertia, and droop control settings. The resulting fault currents, voltage profiles, and sequence components will be analyzed to understand their impact on conventional protection functions such as overcurrent, directional, and earth fault protection.
The outcome of the thesis will provide improved insight into the behavior of converters during network disturbances and contribute to the development of protection strategies for future converter-dominated MVAC distribution systems.
Details
Period: January - June 2027
Number of credits: 30 hp / ECTS
Number of students: 1
Location: Västerås
Tasks
Conduct a literature review on fault types, relay protection functions and converter topologies and control with particular focus on fault scenarios.Utilize simulation tools (e.g., Matlab Simulink, and/or PSCAD) to model various faults and the resulting behavior of mixed resources considering:Different grounding conceptsConverter control strategies and relevant control parameters (The ABB converter models will be provided.)Various grid topologies and converter ratings and locations.
Prepare a detailed report documenting all methodologies, findings, and conclusions. Possible publication.Optional extension:Investigate how different protection algorithms are affected by the resulting fault currents. Preferred Background
Enrolled in a Master’s program in Electrical Engineering or related fields. Experience in power system modeling tools, or electrical circuit simulation tools like Matlab Simulink or PSCAD.Familiarity with some control theory is advantageous.The ideal candidate will be self-motivated, analytical, well-organized, and possess a strong curiosity for research and innovation.
More About Us
In case you have questions, please contact Anna Huwyler, [email protected]
Kommande möjligheter Vänligen notera att denna annons syftar till att få in intresseanmälningar till en kandidatpool kopplat till det aktuella området, och det är därför inte en öppning till ett specifikt jobb just nu. Genom att ansöka uttrycker du ditt intresse för framtida karriärmöjligheter med ABB.
Vi värdesätter människor med olika bakgrund. Ansök idag för att ha möjlighet att bli aktuell för kommande roller och besök www.abb.com för att utforska hur vi driver utveckling över hela världen.
