@article{46863,
  author       = {{Schenke, Maximilian and Haucke-Korber, Barnabas and Wallscheid, Oliver}},
  issn         = {{0885-8993}},
  journal      = {{IEEE Transactions on Power Electronics}},
  keywords     = {{Electrical and Electronic Engineering}},
  pages        = {{1--16}},
  publisher    = {{Institute of Electrical and Electronics Engineers (IEEE)}},
  title        = {{{Finite-Set Direct Torque Control via Edge Computing-Assisted Safe Reinforcement Learning for a Permanent Magnet Synchronous Motor}}},
  doi          = {{10.1109/tpel.2023.3303651}},
  year         = {{2023}},
}

@inproceedings{46865,
  author       = {{Haucke-Korber, Barnabas and Schenke, Maximilian and Wallscheid, Oliver}},
  booktitle    = {{2023 IEEE International Electric Machines &amp; Drives Conference (IEMDC)}},
  publisher    = {{IEEE}},
  title        = {{{Deep Q Direct Torque Control with a Reduced Control Set Towards Six-Step Operation of Permanent Magnet Synchronous Motors}}},
  doi          = {{10.1109/iemdc55163.2023.10239018}},
  year         = {{2023}},
}

@inproceedings{46864,
  author       = {{Book, Felix and Traue, Arne and Schenke, Maximilian and Haucke-Korber, Barnabas and Wallscheid, Oliver}},
  booktitle    = {{2023 IEEE International Electric Machines &amp; Drives Conference (IEMDC)}},
  publisher    = {{IEEE}},
  title        = {{{Gym-Electric-Motor (GEM) Control: An Automated Open-Source Controller Design Suite for Drives}}},
  doi          = {{10.1109/iemdc55163.2023.10239044}},
  year         = {{2023}},
}

@phdthesis{58680,
  abstract     = {{Heutige On-Board-Ladewandler sind typischerweise aus zwei Stufen aufgebaut, die über einen Spannungszwischenkreis verbunden sind. Als erste Stufe kommt ein PFC-Gleichrichter zum Einsatz, der die Anforderungen an den Netzstrom bezüglich Oberschwingungsgehalt und Leistungsfaktor sicherstellt. Für die zweite Wandler-Stufe hat sich in den vergangenen Jahren ein LLC-Resonanzwandler qualifiziert, der die Ladeleistung an die Traktionsbatterie galvanisch getrennt überträgt. Der Zwischenkreis besteht aus einer Bank von Elektrolytkondensatoren, in denen die pulsierende Eingangsleistung zwischengespeichert wird. Die Kondensatoren machen einen erheblichen Teil des Lader-Volumens aus und altern schnell, was insbesondere für Ladewandler an Bord von Elektrofahrzeugen unerwünscht ist. In der vorliegenden Arbeit wird untersucht, ob diese zweistufige Struktur verworfen werden kann, indem der LLC-Resonanzwandler direkt an die gleichgerichtete Netzspannung angeschlossen wird.Zum Einsatz des LLC-Resonanzwandlers als einstufiger Ladewandler ist die Schaltung für einen großen Strom- und Spannungsbereich auszulegen. Hierfür wird in der vorliegenden Arbeit eine erweiterte Zeitbereichsanalyse erarbeitet, deren hohe Modellierungsgenauigkeit im Anschluss experimentell nachgewiesen wird. Mit Hilfe dieser Zeitbereichsanalyse werden die Belastungsgrößen des Resonanzwandlers berechnet, um hiermit eine Vorauswahl der Schaltungsparameter treffen zu können. Darauf aufbauend erfolgt die Optimierung des integrierten Transformators als Schlüsselkomponente des Ladewandlers sowie dessen prototypische Realisierung. Abschließend wird mittels Prototypen die erzielbare Leistungsdichte ermittelt. Ergebnis: Verglichen mit etablierten Ladewandlern der heutigen Elektrofahrzeuge konnte durch den einstufigen Ansatz die Leistungsdichte um ca. 53% gesteigert werden.}},
  author       = {{Keuck, Lukas}},
  publisher    = {{LibreCat University}},
  title        = {{{Entwurf eines einstufigen Ladewandlers auf Basis eines LLC-Resonanzwandlers}}},
  doi          = {{10.17619/UNIPB/1-1727}},
  year         = {{2023}},
}

@inproceedings{30347,
  author       = {{Schafmeister, Frank}},
  booktitle    = {{International Conference on Electric & Electronic in Hybrid and Electric Vehicles and Electric Energy Management (EEHE),}},
  location     = {{Bamberg, Germany}},
  title        = {{{Compensation of LF Common-Mode Noise by the internal DC/DC-Stage for transformerless On-Board Chargers at Three- and Single-Phase Operation}}},
  year         = {{2022}},
}

@inproceedings{30349,
  author       = {{Förster, Nikolas and Rehlaender, Philipp and Wallscheid, Oliver and Schafmeister, Frank and Böcker, Joachim}},
  booktitle    = {{Proc. 37th IEEE Applied Power Electronics Conference (APEC)}},
  location     = {{Houston, TX, USA}},
  publisher    = {{IEEE}},
  title        = {{{An Open-Source Transistor Database and Toolbox as an Unified Software Engineering Tool for Managing and Evaluating Power Transistors}}},
  year         = {{2022}},
}

@inproceedings{30350,
  author       = {{Keuck, Lukas and Schafmeister, Frank and Böcker, Joachim}},
  booktitle    = {{Proc. IEEE International Exhibition and Conference for Power Electronics, Intelligent Motion, Renewable Energy and Energy Management (PCIM)}},
  location     = {{Nuremberg, Germany}},
  publisher    = {{IEEE}},
  title        = {{{Robust Hysteresis Control for LLC Resonant Converters Using a Fully Isolated Measurement Scheme}}},
  year         = {{2022}},
}

@inproceedings{30844,
  author       = {{Huber, Jonas and Wallmeier, Peter and Pieper, Ralf and Schafmeister, Frank and Kolar, Johann}},
  booktitle    = {{Proc. 9th IEEJ International Power Electronics Conference (IPEC)}},
  location     = {{Himeji, Japan}},
  publisher    = {{IEE Japan}},
  title        = {{{Comparative Evaluation of MVAC-LVDC SST and Hybrid Transformer Concepts for Future Datacenters}}},
  year         = {{2022}},
}

@article{34533,
  author       = {{Brosch, Anian and Wallscheid, Oliver and Böcker, Joachim}},
  journal      = {{IEEE Transactions on Power Electronics}},
  keywords     = {{Electrical and Electronic Engineering}},
  publisher    = {{Institute of Electrical and Electronics Engineers (IEEE)}},
  title        = {{{Model Predictive Torque Control for Permanent Magnet Synchronous Motors Using a Stator-Fixed Harmonic Flux Reference Generator in the Entire Modulation Range}}},
  doi          = {{10.1109/tpel.2022.3229619}},
  year         = {{2022}},
}

@inproceedings{32796,
  author       = {{Böcker, Joachim}},
  booktitle    = {{2022 International Symposium on Power Electronics, Electrical Drives, Automation and Motion (SPEEDAM)}},
  location     = {{Sorrento, Italy}},
  publisher    = {{IEEE}},
  title        = {{{Concept Study of an LLC Converter with Magnetically Resonant Inductor}}},
  doi          = {{10.1109/speedam53979.2022.9842047}},
  year         = {{2022}},
}

@article{33459,
  author       = {{Brosch, Anian and Wallscheid, Oliver and Böcker, Joachim}},
  issn         = {{0885-8993}},
  journal      = {{IEEE Transactions on Power Electronics}},
  keywords     = {{Electrical and Electronic Engineering}},
  publisher    = {{Institute of Electrical and Electronics Engineers (IEEE)}},
  title        = {{{Long-Term Memory Recursive Least Squares Online Identification of Highly Utilized Permanent Magnet Synchronous Motors for Finite-Control-Set Model Predictive Control}}},
  doi          = {{10.1109/tpel.2022.3206598}},
  year         = {{2022}},
}

@inproceedings{34176,
  abstract     = {{Cascaded H-bridge Converters (CHBs) are a promising solution in converting power from a three-phase medium voltage of 6.6 kV...30 kV to a lower DC-voltage in the range of 100 V...1 kV to provide pure DC power to applications such as electrolyzers for hydrogen generation, data centers with a DC power distribution and DC microgrids. CHBs can be interpreted as modular multilevel converters with an isolated DC-DC output stage per module, require a large DC-link capacitor for each module to handle the second harmonic voltage ripple caused by the fluctuating input power within a fundamental grid period. Without a zero-sequence voltage injection, star-connected CHBs are operated with approximately sinusoidal arm voltages and currents. The floating star point potential enables to utilize different zero-sequence voltage injection techniques such as a third-harmonic injection with 1/6 of the grid voltage amplitude or a Min-Max voltage injection. Both well-known methods have the advantage to reduce the peak arm voltage and thereby the number of required modules by 13.4 % (to √ 3 2). This paper proves analytically that the third-harmonic injection with 1/6 of the grid voltage amplitude reduces the second harmonic voltage ripple by only 15.1 % compared to no-voltage injection for unity power factor operation and balanced grid voltages. Then it is shown, that the Min-Max injection has the often overlooked advantage of reducing the second harmonic voltage ripple by even 18.8 %. By applying the here proposed zero-sequence voltage injection in saturation modulation, the second harmonic voltage ripple of the DC-link capacitors is reduced by even 24.3 %, while still requiring the same number of modules as the Min-Max injection. For a realistic number of reserve modules, the overall energy ripple in the DC-link capacitors is reduced by 40 %.}},
  author       = {{Unruh, Roland and Schafmeister, Frank and Böcker, Joachim}},
  booktitle    = {{24th European Conference on Power Electronics and Applications (EPE'22 ECCE Europe)}},
  isbn         = {{978-9-0758-1539-9}},
  keywords     = {{Cascaded H-Bridge, Solid-State Transformer, Zero sequence voltage, Third harmonic injection, Capacitor voltage ripple}},
  location     = {{Hanover, Germany}},
  publisher    = {{IEEE}},
  title        = {{{Zero-Sequence Voltage Reduces DC-Link Capacitor Demand in Cascaded H-Bridge Converters for Large-Scale Electrolyzers by 40%}}},
  year         = {{2022}},
}

@inproceedings{35126,
  author       = {{Förster, Nikolas and Hölscher, Jonas and Piepenbrock, Till and Rehlaender, Philipp and Wallscheid, Oliver and Schafmeister, Frank and Böcker, Joachim}},
  booktitle    = {{2022 24th European Conference on Power Electronics and Applications (EPE’22 ECCE Europe)}},
  pages        = {{P.1--P.9}},
  title        = {{{An Open-Source FEM Magnetic Toolbox for Calculating Electric and Thermal Behavior of Power Electronic Magnetic Components}}},
  year         = {{2022}},
}

@inproceedings{33489,
  author       = {{Lange, Jarren and Schmies, Dominik and Stille, Karl Stephan Christian and Böcker, Joachim and Wallscheid, Oliver}},
  booktitle    = {{EPE'22 ECCE Europe}},
  location     = {{Hannover}},
  publisher    = {{IEEE}},
  title        = {{{Experimental Comparison of FPGA-Implemented Model Predictive Voltage Control to Cascaded Proportional Resonant Control for a Three-Phase Four-Wire Three-Level Grid-Forming Inverter of 250 kVA}}},
  year         = {{2022}},
}

@inproceedings{35125,
  author       = {{Förster, Nikolas and Rehlaender, Philipp and Wallscheid, Oliver and Schafmeister, Frank and Böcker, Joachim}},
  booktitle    = {{2022 IEEE Applied Power Electronics Conference and Exposition (APEC)}},
  publisher    = {{IEEE}},
  title        = {{{An Open-Source Transistor Database and Toolbox as a Unified Software Engineering Tool for Managing and Evaluating Power Transistors}}},
  doi          = {{10.1109/apec43599.2022.9773701}},
  year         = {{2022}},
}

@inproceedings{35127,
  author       = {{Förster, Nikolas and Piepenbrock, Till and Rehlaender, Philipp and Wallscheid, Oliver and Schafmeister, Frank and Böcker, Joachim}},
  booktitle    = {{PCIM Europe 2022; International Exhibition and Conference for Power Electronics, Intelligent Motion, Renewable Energy and Energy Management}},
  pages        = {{1--10}},
  title        = {{{An Open-Source FEM Magnetics Toolbox for Power Electronic Magnetic Components}}},
  doi          = {{10.30420/565822103}},
  year         = {{2022}},
}

@article{34065,
  author       = {{Kirchgässner, Wilhelm and Wallscheid, Oliver and Böcker, Joachim}},
  issn         = {{0952-1976}},
  journal      = {{Engineering Applications of Artificial Intelligence}},
  publisher    = {{Elsevier BV}},
  title        = {{{Thermal neural networks: Lumped-parameter thermal modeling with state-space machine learning}}},
  doi          = {{10.1016/j.engappai.2022.105537}},
  volume       = {{117}},
  year         = {{2022}},
}

@inproceedings{32859,
  author       = {{Kirchgässner, Wilhelm and Wallscheid, Oliver and Böcker, Joachim}},
  booktitle    = {{2022 International Power Electronics Conference (IPEC-Himeji 2022- ECCE Asia)}},
  publisher    = {{IEEE}},
  title        = {{{Learning Thermal Properties and Temperature Models of Electric Motors with Neural Ordinary Differential Equations}}},
  doi          = {{10.23919/ipec-himeji2022-ecce53331.2022.9807209}},
  year         = {{2022}},
}

@article{44163,
  author       = {{Rehlaender, Philipp and Wallscheid, Oliver and Schafmeister, Frank and Böcker, Joachim}},
  issn         = {{0885-8993}},
  journal      = {{IEEE Transactions on Power Electronics}},
  keywords     = {{Electrical and Electronic Engineering}},
  number       = {{11}},
  pages        = {{13413--13427}},
  publisher    = {{Institute of Electrical and Electronics Engineers (IEEE)}},
  title        = {{{LLC Resonant Converter Modulations for Reduced Junction Temperatures in Half-Bridge Mode and Transformer Flux in the On-the-Fly Morphing Thereto}}},
  doi          = {{10.1109/tpel.2022.3180758}},
  volume       = {{37}},
  year         = {{2022}},
}

@inproceedings{42894,
  author       = {{Kirchgässner, Wilhelm and Wöckinger, Daniel and Wallscheid, Oliver and Bramerdorfer, Gerd and Böcker, Joachim}},
  booktitle    = {{IKMT 2022; 13. GMM/ETG-Symposium}},
  pages        = {{1--6}},
  title        = {{{Application of Thermal Neural Networks on a Small-Scale Electric Motor}}},
  year         = {{2022}},
}

