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May 17, 2026Energies2 citationsOpen Access

Topology and Characteristic Analysis of a Relay-Based Four-Coil WPT System for Electric Vehicles

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YYYifan YanYWYunjian WangJLJiahao Li

Key Points

  • The aim is to develop wireless power transfer systems that enhance efficiency and adaptability for electric vehicles.
  • Proposed two relay-based topologies: S-SS-LCC and LCC-SS-LCC.
  • Established frequency-domain models to analyze resonant characteristics and power transfer behavior.
  • Conducted low-power experimental tests to verify output characteristics.
  • S-SS-LCC topology achieves 12 A output current at 612 V with 91.63% efficiency in grid-to-vehicle mode.
  • LCC-SS-LCC system delivers bidirectional constant-current output with 92.23% efficiency at 87.7 kHz.
  • Experimental results confirm the predicted performance of constant-current and constant-voltage outputs.

Abstract

With the increasing demand for flexible electric vehicle charging and grid-interactive energy utilization, wireless power transfer (WPT) systems with high efficiency, bidirectional power flow capability, and controllable charging characteristics have attracted growing attention. However, existing WPT systems for electric vehicles still suffer from challenges including low adaptability to multiple operating modes, difficulty in achieving stable constant-current/constant-voltage output, and limited bidirectional power transfer capability under weak-coupling conditions. To address these issues, two relay-based four-coil WPT topologies, namely S-SS-LCC and LCC-SS-LCC, are proposed for electric vehicle charging and bidirectional energy transfer applications. Based on fundamental frequency analysis, frequency-domain models of the two topologies are established to reveal the relationships among resonant characteristics, output behavior, and power transfer direction. The results show that the S-SS-LCC topology can achieve constant-current and constant-voltage output in the forward grid-to-vehicle charging mode, as well as constant-voltage output in the reverse vehicle-to-grid mode. In contrast, the symmetrical LCC-SS-LCC topology can achieve bidirectional constant-current power transfer, making it suitable for vehicle-to-vehicle emergency charging scenarios. Under weak-coupling conditions (k = 0.1), the S-SS-LCC system delivers an output current of approximately 12 A at 85.2 kHz and an output voltage of about 612 V at 87.7 kHz, with a peak efficiency of 91.63%. The LCC-SS-LCC system achieves bidirectional constant-current output at 87.7 kHz with a maximum efficiency of 92.23%. Low-power experimental results further verify the predicted constant-current and constant-voltage characteristics. The proposed topologies provide a promising solution for efficient electric vehicle wireless charging and flexible bidirectional energy interaction in future smart charging systems.

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Cite This Study

Yan et al. (2026) studied this question.

synapsesocial.com/papers/6a095c6d7880e6d24efe2848https://doi.org/10.3390/en19102380
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