Hoffmann, Klaus
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Alternative name
Hoffmann, Klaus Friedrich
Hoffmann, Klaus F.
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Active HSU Member
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Leitung
63 results
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- PublicationOpen AccessA cross-domain electromagnetic compatibility data platform for the digital development of automated vehicles(UB HSU, 2024-12-20)
; ; ; ; ; ; ; ; ; ; ; ;Wagner, Jan ;Thoma, Peter ;Aichele, Hermann ;Cuevas Rosa, SalvadorEidher, RolandMaintaining compliance to electromagnetic compatibility (EMC) standards becomes an increasing challenge for the automotive industry in the course of the ongoing automation of vehicles. Novel extended design procedures and test standards are required to ensure safety of automated driving functions, particularly in an adverse electromagnetic (EM) environment. In order to keep the number of tests within a reasonable and practical limit, an evaluation framework based on virtual design methods and information drawn from legacy experiments and simulations can support the automotive industry. With this digital framework appropriate technological solutions can be identified during the pre-compliance phase and efficient experimental designs can be generated to ensure EMC compliance. Furthermore, such a framework paves the way for digital EMC twins of automated vehicles (AVs) considering the complex interrelations of AV’s (sub-)systems to accurately predict the behaviour of new AV functions in various EM environments. To this purpose, a cross-domain platform is being developed in this work as the backbone of such a virtual framework. It supports the handling, storage and processing of various datasets from EMC test campaigns, including (intentional) electromagnetic interference ((I)EMI) tests, as well as simulations of automotive devices-under-test (DUTs). The platform allows for the establishment of interconnections between various data sources and deeper analyses based on artificial intelligence (AI) methods to deduce EMC information for new developments, whilst maintaining traceability. - PublicationOpen AccessLeistungselektronik in kritischer Infrastruktur am Beispiel der medizinischen Bildgebung - Untersuchung der Elektromagnetischen Verträglichkeit und Optimierung der Resilienz(UB HSU, 2024-12-20)
; ; ; ; ; ; ; ; Hohe Anforderungen an die elektronischen Komponenten von Systemen der medizinischen Bildgebung können im Rahmen derer Energieversorgung nur durch den Einsatz von moderner Leistungselektronik erfüllt werden. Mit der Verwendung von Wide-Bandgap-Leistungshalbleitern, z. B. in Stromrichtern von Röntgensystemen, gehen damit schnellere Schaltvorgänge sowie hohe Schaltfrequenzen einher. Dies macht eine Untersuchung der Auswirkungen auf die Elektromagnetische Verträglichkeit (EMV) erforderlich. Das betrifft sowohl die Einhaltung von normativen EMV-Grenzwerten als auch die Wechselwirkung der parasitären Eigenschaften von Komponenten innerhalb eines Systems. Im Forschungsprojekt DiMoLEK werden messtechnische Untersuchungen durchgeführt und es wird ein Ansatz zur Modellierung der parasitären Eigenschaften von passiven Komponenten entwickelt. Die Simulation von Stromrichtern mit anschließender Analyse der Wechselwirkungen parasitärer Eigenschaften ermöglicht die Optimierung der (elektromagnetischen) Resilienz. Dies kann beispielsweise durch eine Anpassung des Designs der Komponenten und der Modulationsverfahren erreicht werden. - PublicationMetadata only
- PublicationMetadata onlyLeistungselektronik für Hochleistungspulsanwendungen am Beispiel einer kompakten Energieversorgung elektrischer Waffen(Bundesministerium der Verteidigung, 2023)
; ; ;Liebfried, Oliver - PublicationMetadata onlySimulation of Resonances in Power Electronic Circuits for EMC Prediction(2023)
; ;Rathjen, Kai-Uwe ;Landskron, Norman; ; The use of wide-bandgap semiconductors in modern power electronics creates new challenges in EMC. These result, among other things, from high frequencies and steep switching slopes. In addition, parasitic elements of semiconductors, passive components and the printed circuit board can cause resonances, which become noticeable in oscillations. In this work, a possibility is presented to simulate resonances in a power electronic circuit. The circuit used is a series-LC resonant converter with SiC-MOSFETs. An impedance model of the resonant load is generated with consideration of parasitic elements. The accurate simulation is validated by comparison with time domain measurements. EMC measurements of conducted and radiated emissions are done. It is shown that the resonances lead to emissions which can be predicted using the time domain simulation. - PublicationMetadata onlyOptimization and scaling of a compact high-power IGCT capacitor charger based on simulation and measurements with a 300 kW/3.3 kV demonstrator(IEEE, 2022-10-17)
; ; ;Brommer, Volker ;Liebfried, Oliver - PublicationMetadata onlyAnalysis and Discussion of Different Three-Phase dv/dt Filter Topologies and the Influences of Their Filter Parameters on Losses and EMC(2022-10-17)
; ; ; ;Rathjen, Kai-Uwe; Woywode, Oliver - PublicationMetadata onlyNon‐linear effects of operation temperature on a field‐coupled current‐controlled inductance(Helmut-Schmidt-Universität/Universität der Bundeswehr Hamburg, Elektrische Maschinen und Antriebssysteme, 2022)
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