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Load-Independent Voltage and Current Transfer Characteristics of High-Order Resonant Network in IPT System

最大功率转移定理 电压 电容器 电感器 电容电路 恒功率电路 补偿(心理学) 控制理论(社会学) 恒流 串并联电路 电气工程 功率(物理) 工程类 电子工程 物理 功率因数 计算机科学 量子力学 人工智能 心理学 控制(管理) 精神分析
作者
Jianghua Lu,Guorong Zhu,Deyan Lin,Siu‐Chung Wong,Jin Jiang
出处
期刊:IEEE Journal of Emerging and Selected Topics in Power Electronics [Institute of Electrical and Electronics Engineers]
卷期号:7 (1): 422-436 被引量:87
标识
DOI:10.1109/jestpe.2018.2823782
摘要

Load-independent output characteristics of an inductive power transfer (IPT) system are of increasing interest in electric vehicle and LED lighting applications. All compensation networks in the IPT system are actually high-order resonant circuits. In a high-order resonant network, there are multiple resonant frequencies to get load-independent voltage output and current output. It is critical to analyze the resonant conditions to achieve high efficiency in both load-independent voltage output and current output modes. This paper proposed a general modeling method for arbitrary high-order resonant networks to get both the load-independent voltage and current transfer characteristics. A high-order circuit can be modeled as a combination of an LC network, a multistage T-circuit, and/or multistage Π-circuit in series. The proposed method is verified by applying to voltage-fed double-sided inductor-capacitor-capacitor (LCC), series-series (SS), S-SP, LCC-S, and current-fed CLC-LC compensation networks in the IPT system. The MATLAB simulation and the experimental prototype of a constant voltage-fed double-sided LCC compensated IPT system with up to 3.3-kW power transfer are built. The efficiency of the double-sided LCC compensated IPT system is up to 92.9% and 90.6% when the IPT system operates at resonant frequencies that achieve constant current output and constant voltage output, respectively, which are compliance with the frequency requirement by SAE J2954 standard.
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