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一种频率控制的电池自适应远距离高效无线充电系统
A Frequency-Controlled Battery Adaptive Long-Distance High-Efficiency Wireless Charging System
| 作者 | Jigang Wang · Weiwen Chen · Mengcheng Huang · Song Yu · Baisen Lin · Yilang Huang |
| 期刊 | IEEE Journal of Emerging and Selected Topics in Power Electronics |
| 出版日期 | 2025年2月 |
| 技术分类 | 储能系统技术 |
| 技术标签 | 储能系统 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | 多中继无线电能传输 电池负载自适应 恒流零相角输出 恒压零相角输出 充电模式切换 |
语言:
中文摘要
多中继无线功率传输(MR-WPT)系统在复杂空间内难以维护设备的远距离供电中具有显著优势。本文提出一种结构极简的电池负载自适应无线充电系统,设计了一种新颖的n线圈MR-WPT系统,可在不同频率下实现零相位角恒流(CC-ZPA)与恒压(CV-ZPA)输出。通过发射端感知电池状态的方法获取系统端口特性,并据此建立两种充电模式的切换判据。系统仅利用发射端电流信息判断电池状态并调节频率切换模式,无需通信与拓扑切换,结构最简。六线圈原型实验验证了系统最大谐振传输效率达97%。
English Abstract
The multirelay wireless power transfer (MR-WPT) system offers significant advantages in long-distance wireless power supply for equipment in complex spaces unsuitable for maintenance. While ensuring functionality, the simple structure will undoubtedly have a strong appeal in terms of stability and cost. This article presents an extremely simple battery load adaptive wireless charging system. A novel n-coil MR-WPT system has been designed that is capable of achieving constant current output with a zero phase angle (CC-ZPA) and constant voltage output with a zero phase angle (CV-ZPA) at different frequencies. The port characteristics of the system were obtained after a method for sensing the battery charge state at the transmitter (Tx) side was obtained. This is employed as a foundation for establishing the switching criterion for the two charging modes. The system uses the Tx’s current to determine the battery status and adjust the frequency to change the charging mode; it is the simplest structure as it does not require any communication and topology switching. Finally, a six-coil prototype was used to validate the system with a maximum resonator transmission efficiency of 97%.
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SunView 深度解读
该频率控制的MR-WPT技术对阳光电源新能源汽车产品线具有重要应用价值。其CC-ZPA/CV-ZPA自适应切换机制可直接应用于无线充电桩产品,实现无通信的电池状态感知与充电模式切换,简化系统架构。多中继线圈的远距离传输特性(97%谐振效率)可解决停车位偏差容忍度问题,提升用户体验。该技术的发射端电流感知方法可借鉴至储能系统ST系列产品的电池管理中,通过端口特性分析实现无线BMS状态估计。频率调制控制策略与阳光电源MPPT算法优化经验形成技术协同,可拓展至分布式储能的无线互联场景,降低系统复杂度与维护成本。