Pulse Density Modulation Based Mutual Inductance and Load Resistance Identification Method for Wireless Power Transfer System

被引:21
作者
Dai, Ruimin [1 ]
Zhou, Wei [1 ]
Chen, Yonghong [1 ]
Zhu, Zhehui [1 ]
Mai, Ruikun [1 ]
机构
[1] Southwest Jiaotong Univ, Chengdu 611756, Sichuan, Peoples R China
基金
中国国家自然科学基金;
关键词
Resonant frequency; Inductance; Transmitters; Receivers; Topology; Resistance; Power generation; Inductive power transfer (IPT); load estimation; mutual inductance estimation; pulse density modulation (PDM); HIGH-EFFICIENCY; PRIMARY-SIDE; KW;
D O I
10.1109/TPEL.2022.3153657
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In wireless power transfer (WPT) system, the information of mutual inductance and load resistance is usually needed for the front-end to regulate power and efficiency. To acquire the values of these two parameters without wireless communication system and without affecting the output power, this article proposes an identification method based on the pulse density modulation (PDM) technique. The underlying principle is to obtain a range of interharmonics by altering the sequence of PDM. First, the PDM strategy brings in interharmonics, which can be identified through fast Fourier transmission (FFT). Then, these interharmonics are used to established multiple sets of equation related to front-end impedance and the two unknowns. Finally, with the least-square approximation, mutual inductance and load resistance can be estimated. This article notices that the sequence of PDM strategy could affect the amplitudes of interharmonics, and selects the sequences to maximize the magnitudes for less sensitivity to measurement errors. Experimental results show that the relative errors of identification are less than 5% when the nominal values of capacitors are the same as actual values, and reach 7.40% when considering the nominal values may deviate from the actual values. Besides, the output power and efficiency are not affected during the identification process. This proposal requires only magnitudes of voltage and current in the transmitter side, no other hardware is needed, and works with the fixed frequency, which is suitable for any frequency range.
引用
收藏
页码:9933 / 9943
页数:11
相关论文
共 38 条
[1]  
Cai WK, 2019, 2019 IEEE PELS WORKSHOP ON EMERGING TECHNOLOGIES - WIRELESS POWER TRANSFER (WOW), P378, DOI [10.1109/WoW45936.2019.9030641, 10.1109/wow45936.2019.9030641]
[2]  
Calleja H, 2000, IEEE POWER ELECTRON, P1457, DOI 10.1109/PESC.2000.880522
[3]   Reconfigurable Topology for IPT System Maintaining Stable Transmission Power Over Large Coupling Variation [J].
Chen, Yang ;
Yang, Bin ;
Li, Qiao ;
Feng, Hao ;
Zhou, Xiaobing ;
He, Zhengyou ;
Mai, Ruikun .
IEEE TRANSACTIONS ON POWER ELECTRONICS, 2020, 35 (05) :4915-4924
[4]   Inductive Power Transfer [J].
Covic, Grant A. ;
Boys, John T. .
PROCEEDINGS OF THE IEEE, 2013, 101 (06) :1276-1289
[5]  
Dai X., 2011, P IEEE INT C SUST EN, P1
[6]   Improved Pulse Density Modulation for Semi-bridgeless Active Rectifier in Inductive Power Transfer System [J].
Fan, Manyi ;
Shi, Liming ;
Yin, Zhenggang ;
Jiang, Longbin ;
Zhang, Facong .
IEEE TRANSACTIONS ON POWER ELECTRONICS, 2019, 34 (06) :5893-5902
[7]   Pulse-density-modulated power control of a 4 kW, 450 kHz voltage-source inverter for induction melting applications [J].
Fujita, H ;
Akagi, H .
IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS, 1996, 32 (02) :279-286
[8]   Principle and Application of the Contactless Load Detection Based on the Amplitude Decay Rate in a Transient Process [J].
Hu, Sideng ;
Liang, Zipeng ;
Wang, Yujie ;
Zhou, Jing ;
He, Xiangning .
IEEE TRANSACTIONS ON POWER ELECTRONICS, 2017, 32 (11) :8936-8944
[9]   Control Design for Optimizing Efficiency in Inductive Power Transfer Systems [J].
Huang, Zhicong ;
Wong, Siu-Chung ;
Tse, Chi K. .
IEEE TRANSACTIONS ON POWER ELECTRONICS, 2018, 33 (05) :4523-4534
[10]  
Joung G. B., 1988, PESC '88 Record. 19th Annual IEEE Power Electronics Specialists Conference (Cat. No.88CH2523-9), P575, DOI 10.1109/PESC.1988.18183