A Partial Discharge Study of Medium-Voltage Motor Winding Insulation under Two-Level Voltage Pulses with High Dv/Dt

被引:0
|
作者
Hu B. [1 ]
Wei Z. [1 ]
You H. [1 ]
Na R. [1 ]
Liu R. [1 ]
Xiong H. [1 ]
Fu P. [1 ]
Zhang J. [1 ]
Wang J. [1 ]
机构
[1] Department of Electrical and Computer Engineering, Ohio State University, Columbus, 43210, OH
来源
IEEE Open Journal of Power Electronics | 2021年 / 2卷
关键词
electric machines; high-voltage techniques; partial discharge; pulse width modulation (PWM); Silicon carbide (SiC); variable speed drives;
D O I
10.1109/OJPEL.2021.3069780
中图分类号
学科分类号
摘要
Medium-voltage (e.g., 10 kV rated) silicon carbide (SiC) devices have great potentials in medium-voltage variable speed drives. But their high switching dv/dt can increase the voltage stress on motor windings and cause partial discharges. This paper presents a partial discharge study of a medium-voltage form-wound winding under two-level square-wave voltage pulses. A 10 kV SiC device-based test platform is built to generate voltage pulses with high dv/dt. A three-step test approach is proposed and employed to systematically investigate the effects of various voltage parameters on partial discharges. These include voltage rise/fall time, voltage pulse width, pulse repetitive rate, duty ratio, voltage polarity, fundamental frequency, and modulation index. Partial discharge inception voltages (PDIVs) and repetitive partial discharge inception voltages (RPDIVs) of the sample are measured with varied voltage parameters. Test results show that voltage rise/fall time is a major affecting factor which reduces PDIVs of the winding sample by 6.5% when it decreases from 800 ns to 100 ns. Based on test results, a hypothetical partial discharge mechanism is presented to explain the effects of fast voltage rise/fall edges. An empirical equation is also derived to estimate PDIVs of a winding sample under various voltage rise/fall time and pulse width conditions. © 2020 IEEE.
引用
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页码:225 / 235
页数:10
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