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Mitigating Noncirculating Bearing Currents by a Correct Stator Magnetic Circuit and Winding Design.

, , , , and . IEEE Trans. Ind. Electron., 68 (5): 3805-3812 (2021)

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On the Application of Extended Grounded Slot Electrodes to Reduce Noncirculating Bearing Currents., , , , and . IEEE Trans. Ind. Electron., 70 (3): 2286-2295 (2023)Fault-Tolerant Modular Stator Concentrated Winding Permanent Magnet Machine., , , , , and . IEEE Access, (2020)Performance of a Direct-Liquid-Cooled Motor in an Electric Bus Under Different Load Cycles., , , , , , , and . IEEE Access, (2019)Mitigation of Inverter-Induced Noncirculating Bearing Currents by Introducing Grounded Electrodes into Stator Slot Openings., , , , and . IEEE Trans. Ind. Electron., 68 (12): 11752-11760 (2021)Estimation of the flux linkage in a direct-torque-controlled drive., , and . IEEE Trans. Ind. Electron., 50 (2): 283-287 (2003)Mitigating Noncirculating Bearing Currents by a Correct Stator Magnetic Circuit and Winding Design., , , , and . IEEE Trans. Ind. Electron., 68 (5): 3805-3812 (2021)Exciter Remanence Effect Mitigation in a Brushless Synchronous Generator for Test-field Applications., , , , and . IECON, page 1-6. IEEE, (2021)Limitation of the load angle in a direct-torque-controlled synchronous machine drive., , , and . IEEE Trans. Ind. Electron., 51 (4): 793-798 (2004)The Instrumentation Influence on the Motor Loss Determination Uncertainty., , , and . IECON, page 1387-1392. IEEE, (2019)Experimental Investigation of the Losses and Efficiency of 75 kW Induction Motor Drive System., , , , , and . IECON, page 1052-1058. IEEE, (2019)