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MOSFET-Oriented Current Sharing Control Strategy for Scalable Parallel DC/DC Converters
Mingzhe Qu1, Yuan Zhou1, Zhigang Zhang2
1School of Intelligent and Architectural Engineering, Harbin University, Harbin 150086, China.
Micromachines
|July 28, 2026
Summary
A new three-loop control strategy enhances parallel DC/DC converters by improving current sharing accuracy. This method addresses MOSFET mismatches for stable, scalable high-power applications.
Area of Science:
- Electrical Engineering
- Power Electronics
Background:
- Parallel DC/DC converter modules are crucial for power scalability.
- MOSFET parameter mismatches and module inconsistencies can cause load current imbalance in parallel systems.
Purpose of the Study:
- To propose and validate a three-loop current-sharing control strategy for parallel MOSFET-based lagging leg series diodes phase-shift full-bridge (LLSD-PSFB) converters.
- To mitigate load current imbalance and improve the coordinated operation of parallel converter modules.
Main Methods:
- Analysis of the operating principle and parameter design of a single-module LLSD-PSFB converter.
- Establishment of an averaged model and derivation of a small-signal model for the parallel system.
- Development and validation of a three-loop control strategy (voltage, current, and current-sharing loops).
Main Results:
- The proposed control strategy effectively improves current-sharing accuracy and dynamic response.
- Simulation results validated the effectiveness of the control scheme.
- Experimental results confirmed high current-sharing precision and stable operation of the parallel system.
Conclusions:
- The three-loop control strategy is effective for parallel DC/DC converter systems.
- The strategy demonstrates potential for scalable high-power applications by ensuring stable operation and precise current sharing.
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