无线电源传输
占空比
电容器
控制理论(社会学)
同步(交流)
整流器(神经网络)
对偶(语法数字)
拓扑(电路)
电感器
工程类
电子工程
计算机科学
电压
电气工程
无线
控制(管理)
电信
循环神经网络
文学类
随机神经网络
人工神经网络
人工智能
机器学习
艺术
作者
Huang Li,Junzhong Xu,Fei Gao,Yun Zhang,Xijun Yang,Houjun Tang
标识
DOI:10.1109/tte.2021.3123340
摘要
The dual-side inductor–capacitor–capacitor (LCC) topology circuit has been widely adopted in wireless power transfer (WPT) systems due to its constant output current characteristic. However, most conventional control methods need specific synchronization techniques between the primary and secondary sides to avoid the oscillation in the system, which increases the cost and control complexity. To solve this issue, this article proposes a new duty cycle control (DCC) strategy for a dual-side LCC resonant converter with a semibridgeless active rectifier (SAR). With such a control strategy, gate signals of the primary- and secondary-side circuits do not need to be synchronized, which could reduce the complexity and the cost of the WPT system. Besides, the switching frequency of the secondary side can be decreased significantly. This article first presents the modal analysis of phase shift control (PSC) and DCC. Then, generalized state-space averaging (GSSA) modeling with PSC and the hybrid average modeling with DCC are performed. In addition, controllers' design for both strategies is conducted to achieve the constant output voltage. Finally, the eigenvalues' analysis is used to determine the stability region of the WPT system. The theoretical analysis has been validated by both simulation and experimental results.
科研通智能强力驱动
Strongly Powered by AbleSci AI