← 返回
储能系统技术 储能系统 多物理场耦合 ★ 5.0

一种用于桌面充电的高度可调多中继无线电力传输系统的设计与分析

Design and Analysis of a Height-Adjustable Multirelay Wireless Power Transfer System for Desktop Charging

语言:

中文摘要

近年来,桌面无线充电技术受到广泛关注。为实现智能家居系统并解决插座带来的安全隐患,同时满足不同用户的使用偏好,本文提出一种高度可调的多中继无线电力传输系统。发射线圈嵌入墙体,桌面垂直于墙面,通过两个中继线圈调节功率传输路径及桌面高度。建立了磁耦合器的电路模型,详细分析了交叉耦合问题,并设计电路阻抗工作于感性状态,结合自动调谐辅助电路(ATAC)模块,将阻抗角固定在5°,实现近零相角与零电压开关,无需实时动态监测。实验验证了系统的有效性,最大输出功率达120 W,峰值效率为91.6%。

English Abstract

In recent years, desktop wireless charging has attracted more and more attention. To realize smart home systems and address the safety hazards posed by sockets while also accommodating the diverse usage preferences of different consumers, this article proposes a height-adjustable multirelay wireless power transfer (WPT) system for desktop charging. The transmit (Tx) coil is embedded into the wall, and the desktop is perpendicular to the wall. Two relay coils are used to modify the power transfer pathway and adjust the height of desktop. Then, the circuit model of the proposed magnetic coupler has been built. The cross-coupling issue has been analyzed in detail, and the variable coupling coefficients and load resistance could result in the capacitive-inductive shifts of the impedance angle. To solve the cross-coupling issue, the circuit impedance is designed to operate in the inductive state, combined with the specially designed automatic tuning assist circuit (ATAC) module, the circuit’s impedance angle is fixed at 5° with a slight inductive characteristic, thereby enabling near zero-phase angle (ZPA) and zero-voltage switching (ZVS) operations, irrespective of variations in coupling coefficients and load resistance, and without necessitating dynamic real-time monitoring components. The effects of the distance between coils, the number of relay coils, and the parasitic resistances of each coil have been analyzed in detail. The pickup was placed at four different positions to verify the effectiveness of the proposed method. The experimental prototype has been built, and the ZVS and near ZPA (with a power factor of 0.996) features have also been substantiated through experimental verification. The system achieves a maximum output power of 120 W (79.5%) and a peak efficiency of 91.6% (10.28 W).
S

SunView 深度解读

该高度可调多中继无线电力传输技术对阳光电源充电桩产品线具有重要应用价值。其自动调谐辅助电路(ATAC)实现近零相角与ZVS的方案,可借鉴应用于车载OBC充电机的磁耦合设计,提升功率传输效率。多中继拓扑的交叉耦合抑制方法对ST储能系统的模块化互联设计具有参考意义,可优化多变流器并联时的电磁干扰问题。固定阻抗角控制策略无需实时监测的特性,与阳光电源功率器件的软开关技术协同,可降低SiC/GaN器件的开关损耗,提升系统可靠性。该技术在智能家居场景的应用思路,为iSolarCloud平台拓展家庭能源管理功能提供创新方向。