4.8 Article

A Unipolar-Duty-Cycle Hybrid Control Strategy of Series-Series Compensated IPT System for Constant-Current Output and Efficiency Optimization

期刊

IEEE TRANSACTIONS ON POWER ELECTRONICS
卷 37, 期 11, 页码 13884-13901

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TPEL.2022.3173041

关键词

Zero voltage switching; Couplings; Topology; Frequency modulation; Frequency control; Power generation; Costs; Constant-current output (CCO); efficiency optimization; inductive power transfer (IPT); series-series (S-S) compensation topology; variable-frequency control; zero-voltage switching (ZVS)

资金

  1. Basic Science Research Program through the National Research Foundation of Korea (NRF) - Ministry of Education [2020R1I1A3073169]
  2. Scientific and Technological Project in Henan Province [222102220043]
  3. Doctoral Research Fund of Zhengzhou University of Light Industry [2020BSJJ079]
  4. National Research Foundation of Korea [2020R1I1A3073169] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

向作者/读者索取更多资源

This article introduces a hybrid control strategy based on UDC modulation technique for series-series compensated IPT system. The strategy achieves ZVS and CCO under varying coupling coefficients and load, leading to higher overall efficiency.
Based on the unipolar-duty-cycle (UDC) modulation technique, this article presents a hybrid control strategy for a series-series compensated inductive power transfer (IPT) system. By adjusting the duty cycle and the operating frequency, zero-voltage switching (ZVS) and constant-current output (CCO) can be achieved with varying coupling coefficients and load. Furthermore, as the proposed strategy enables the IPT system to lower the frequency of operation, it provides higher efficiency in the overall output power range than the conventional variable-frequency control methods. The basic principle of the UDC control strategy and its characteristics are introduced, and the system performance under UDC is analyzed and compared with the performance achieved by conventional control methods. Based on this, the UDC closed-loop control scheme, which combines PI control and hysteresis control, is proposed for the dynamic tracking of the ZVS and the CCO under a wide range of coupling coefficients and load. To validate the practicability of the proposed control strategy, a 500-W experimental prototype is configured. The simulation and experimental results indicate that the proposed scheme can stably and accurately track the ZVS and the CCO under varying parameter conditions, and it significantly improves the system efficiency. Especially, the system efficiency is improved by approximately 1.75% under light-load conditions as compared with that of the conventional control method. In addition, since the proposed method employs only one control loop, the cost and complexity of the IPT system are reduced.

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