Development of Wireless Power Transmission System for Transfer Cart with Shortened Track
Abstract
:1. Introduction
- Design to maximize efficiency considering several key design parameters of the coil,
- Coil design considering high efficiency, electromagnetic interface (EMI), electromagnetic field (EMF), and form factor,
- The selection of an appropriate frequency for maximum efficiency, minimum material loss, and minimum EMF,
- An active shielding method using a resonant loop current shielding (RLCS) canceller,
- Structural designs to improve the heat transfer performance of a module,
- Module fabrication for performance verification.
2. Power Transfer System Design
3. Thermal Analysis and Pickup Module Fabrication
3.1. Thermal Analysis
3.2. Pickup Module Fabrication
4. Test Method and Result
5. Conclusions
- An appropriate frequency was selected and active technology was developed by using an RLCS canceller.
- Structural designs were achieved to improve high heat transfer.
- A simple approach was also proposed to estimate the skin depth in a cable, which is made up of multiple strands of multiple wires. This approach was validated through thermal analysis by using ANSYS software considering heat generation by an electric field. The resulting temperature profile was in good agreement with those obtained from experiments.
- We discussed the fabrication of a dummy for shortened tracks for diverse uses. To facilitate the application of the L-dummy, it was designed to fit in the shape of a hole and improve the cooling capacity of the dummy, thereby improving the cooling capacity of the system and minimizing the heat generated by the Litz wire to reduce the damage caused by the edges of the system.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Property | Bakelite | Ferrite Core | Effective Value |
---|---|---|---|
Thermal conductivity (W/m∙K) | 1.4 | 4.25 | 3.32 |
Density (kg/m3) | 1300 | 5000 | 3794.9 |
Specific heat (J/kg∙K) | 1465 | 750 | 982.9 |
Volume (m3) | 1.58 × 10−3 (32.6%) | 3.27 × 10−3 (67.4%) | - |
Parameter | No. 1 | No. 2 |
---|---|---|
Voltage (V) | 318.06 | 287.80 |
Current (A) | 81.34 | 74.83 |
Power (W) | 25,871.0 | 21,546.07 |
Charging efficiency (%) | 83.24 |
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Jin, J.S.; Jung, S.; Kim, H.J. Development of Wireless Power Transmission System for Transfer Cart with Shortened Track. Appl. Sci. 2020, 10, 4694. https://doi.org/10.3390/app10144694
Jin JS, Jung S, Kim HJ. Development of Wireless Power Transmission System for Transfer Cart with Shortened Track. Applied Sciences. 2020; 10(14):4694. https://doi.org/10.3390/app10144694
Chicago/Turabian StyleJin, Jae Sik, Sunghun Jung, and Han Joo Kim. 2020. "Development of Wireless Power Transmission System for Transfer Cart with Shortened Track" Applied Sciences 10, no. 14: 4694. https://doi.org/10.3390/app10144694
APA StyleJin, J. S., Jung, S., & Kim, H. J. (2020). Development of Wireless Power Transmission System for Transfer Cart with Shortened Track. Applied Sciences, 10(14), 4694. https://doi.org/10.3390/app10144694