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March 7, 2026Electronics2 citationsOpen Access

A Single-Stage Three-Phase AC-DC LLC Resonant Converter with Planar Magnetics and Trajectory-Based PFM Control

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QLQichen LiuZZZhengquan Zhang

Key Points

  • The research aims to develop an efficient single-stage three-phase AC-DC converter utilizing an LLC resonant topology and PFM control.
  • Designed a single-stage three-phase AC-DC converter using LLC resonant topology and matrix switch.
  • Developed a trajectory-based pulse frequency modulation control strategy to stabilize DC output.
  • Conducted state-plane analysis to optimize switching frequency and duty cycles for the converter.
  • Created a high-frequency planar inductor and transformer for improved performance during operation.
  • Achieved a peak efficiency of 97% during testing.
  • Obtained a power factor of 0.99, demonstrating effective energy conversion.
  • Achieved a grid current total harmonic distortion (THD) of 3.95%, validating the converter's performance.

Abstract

This paper proposes a single-stage three-phase AC-DC converter based on an LLC resonant topology utilizing a front-end matrix switch. Unlike traditional two-stage solutions, the proposed topology synthesizes a fluctuating equivalent DC voltage from the three-phase input, achieving direct power conversion with high efficiency. To maintain a stable DC output voltage against the time-varying input, a trajectory-based Pulse Frequency Modulation (PFM) control strategy is developed. By employing State-Plane Analysis (SPA), the operational trajectory is divided into four calculation segments, allowing precise derivation of the switching frequency and duty cycles for both boost and buck modes within a single line cycle. Furthermore, to improve power density and reduce parasitic parameters, a high-frequency planar inductor with interleaved windings and a planar transformer are designed for 500 kHz operation. A pipeline control architecture based on a single DSP is implemented to handle the complex real-time computations. A 500 W prototype is built and tested under 100 V input and 130 V output conditions. Experimental results demonstrate that the converter achieves a peak efficiency of 97%, a power factor of 0.99, and a grid current Total Harmonic Distortion (THD) of 3.95%, validating the effectiveness of the proposed topology and control scheme.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/69abc2355af8044f7a4eb9dahttps://doi.org/10.3390/electronics15051095
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