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An optimal current observer for predictive current controlled buck DC-DC converters.
Run Min1, Chen Chen2, Xiaodong Zhang3
1School of Optical and Electronic Information, Huazhong University of Science and Technology, Wuhan 430074, China. hustminrun@gmail.com.
This study introduces an optimal current observer for digital DC-DC converters, enhancing accuracy by compensating for parasitic parameters. This innovation minimizes cost, power loss, and size without extra hardware, improving performance.
Area of Science:
- Electrical Engineering
- Power Electronics
- Control Systems
Background:
- Conventional current sensors in digital current mode controlled DC-DC converters face limitations in isolation, cost, power loss, and size.
- Current observers offer a potential hardware-independent alternative but suffer from divergence issues due to parasitic elements and diode characteristics, leading to output voltage errors.
Purpose of the Study:
- To propose an optimal current observer for digital DC-DC converters that enhances current observation accuracy.
- To implement and validate the proposed observer in a buck converter for improved performance and reduced system overhead.
Main Methods:
- Development of an optimal current observer algorithm that compensates for known parasitic resistors and diode forward conduction voltage.
- Integration of the optimal current observer with a predictive current controller for a buck converter.
- Experimental validation of the proposed system's performance, including current observation accuracy and transient response.
Main Results:
- The optimal current observer achieves highly accurate inductor current observation by compensating for parasitic parameters.
- The implemented buck converter demonstrates superior transient response compared to conventional voltage mode controlled converters.
- Significant reductions in cost, power loss, and size are achieved due to the elimination of external current sensing hardware.
Conclusions:
- The proposed optimal current observer effectively addresses the divergence issues in digital DC-DC converters.
- This approach offers a cost-effective, efficient, and compact solution for current sensing in power electronics applications.
- The experimental results confirm the practical viability and performance benefits of the optimal current observer-based control strategy.
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