Calculation of Parasitic Capacitance to Analyze Shaft Voltage of Electric Motor with Direct-Oil-Cooling System
Abstract
:1. Introduction
2. Parasitic Capacitance and Shaft Voltage
3. Calculation of Parasitic Capacitance Using Electric Field Decomposition Method
3.1. Capacitance between Winding and Stator
3.2. Capacitance between Winding and Rotor
3.3. Capacitance between Stator and Rotor
4. Calculations and Validation of Traction Motor with Direct-Oil-Cooling System
4.1. Parasitic Capacitances and Bearing Voltage Ratio
4.2. Shaft Voltage
5. Experimental Results
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Parameter | Value | Units |
---|---|---|
Poles/Slots | 8/48 | - |
Maximum Power | 160 | kW |
Maximum Speed | 15,000 | RPM |
DC link voltage | 600 | V |
Switching Frequency | 8 | kHz |
Parameter | Definition | Value | Units |
---|---|---|---|
Number of slots | 48 | EA | |
Number of oil-filled slots | 18 | EA | |
Permittivity of vacuum | 8.854 × | F/m | |
Relative permittivity of air | 1.00056 | - | |
Relative permittivity of cooling oil (ATF) | 2.4 | - | |
Relative permittivity of insulation paper | 2.7 | - | |
Upper Width of slot | 5.94 | mm | |
Length of slot | 21 | mm | |
Thickness of air layer | 0.25 | mm | |
Thickness of insulation paper | 0.25 | mm | |
Thickness of cooling oil film | 0.036 | mm | |
Distance between winding and insulation paper | 0.25 | mm | |
Distance between insulation paper and rotor | 1.498 | mm | |
Bottom width of slot | 3 | mm | |
Distance between winding and teeth | 0.598 | mm | |
Thickness of stator teeth cap | 0.5 | mm | |
Angle of the stator teeth | 0.029 | rad | |
Outer radius of rotor | 65.6 | mm | |
Inner radius of stator | 66.5 | mm | |
Length of the air-gap | 0.9 | mm | |
Stack length | 158 | mm | |
Capacitance of the bearing | 208.87 | pF |
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Kim, C.-H.; Jun, S.-B.; Yoon, H.-J.; Kim, N.-H.; Jung, H.-C.; Kim, R.-E.; Jung, S.-Y. Calculation of Parasitic Capacitance to Analyze Shaft Voltage of Electric Motor with Direct-Oil-Cooling System. Processes 2022, 10, 1541. https://doi.org/10.3390/pr10081541
Kim C-H, Jun S-B, Yoon H-J, Kim N-H, Jung H-C, Kim R-E, Jung S-Y. Calculation of Parasitic Capacitance to Analyze Shaft Voltage of Electric Motor with Direct-Oil-Cooling System. Processes. 2022; 10(8):1541. https://doi.org/10.3390/pr10081541
Chicago/Turabian StyleKim, Chan-Ho, Sung-Bae Jun, Han-Joon Yoon, Nam-Ho Kim, Ho-Chang Jung, Rae-Eun Kim, and Sang-Yong Jung. 2022. "Calculation of Parasitic Capacitance to Analyze Shaft Voltage of Electric Motor with Direct-Oil-Cooling System" Processes 10, no. 8: 1541. https://doi.org/10.3390/pr10081541
APA StyleKim, C. -H., Jun, S. -B., Yoon, H. -J., Kim, N. -H., Jung, H. -C., Kim, R. -E., & Jung, S. -Y. (2022). Calculation of Parasitic Capacitance to Analyze Shaft Voltage of Electric Motor with Direct-Oil-Cooling System. Processes, 10(8), 1541. https://doi.org/10.3390/pr10081541