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Partial Discharge Phenomena in Electrical Machines for the More Electrical Aircraft. Part II: Impact of Reduced Pressures and Wide Bandgap Devices.

, , , , and . IEEE Access, (2021)

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Analysis, Modeling, and Design Considerations for the Excitation Systems of Synchronous Generators., , , and . IEEE Trans. Ind. Electron., 65 (4): 2996-3007 (2018)A Fast Method for Modeling Skew and Its Effects in Salient-Pole Synchronous Generators., , , and . IEEE Trans. Ind. Electron., 64 (10): 7679-7688 (2017)Modelling of Voltage Distribution within Hairpin Windings., , , , , , and . IECON, page 1-6. IEEE, (2021)Partial Discharges in Electrical Machines for the More Electric Aircraft - Part I: A Comprehensive Modeling Tool for the Characterization of Electric Drives Based on Fast Switching Semiconductors., , , , , , , and . IEEE Access, (2021)Investigation of Resistivity Impact on AC Losses in Hairpin Conductors., , , and . IECON, page 1-6. IEEE, (2021)An Improved Automatic Voltage Regulator for Self-Excited, Small-to-Medium Power Generating Sets equipped with Brushless Excitation Systems., , , and . IECON, page 904-909. IEEE, (2019)Modeling of Classical Synchronous Generators Using Size-Efficient Lookup Tables With Skewing Effect., , , , and . IEEE Access, (2019)Excitation System Technologies for Wound-Field Synchronous Machines: Survey of Solutions and Evolving Trends., , , and . IEEE Access, (2019)A Methodology to Remove Stator Skew in Small-Medium Size Synchronous Generators via Innovative Damper Cage Designs., , , , , , and . IEEE Trans. Ind. Electron., 66 (6): 4296-4307 (2019)Mitigation of AC Winding Losses for Aircraft Propulsion Motors., , , , , and . IECON, page 1-6. IEEE, (2022)