← 返回
电动汽车驱动 储能系统 ★ 5.0

评估电动汽车无线充电技术:感应式、电容式及混合式系统的效率与实际应用

Evaluating Wireless Power Transfer Technologies for Electric Vehicles: Efficiency and Practical Implementation of Inductive, Capacitive, and Hybrid Systems

作者 Thamvarit Singhavilai · Jarurote Tippayachai · Kamon Jirasereeamornkul · Chainarin Ekkaravarodome · Taweesak Samanchuen
期刊 IEEE Access
出版日期 2025年1月
技术分类 电动汽车驱动
技术标签 储能系统
相关度评分 ★★★★★ 5.0 / 5.0
关键词 电动汽车 无线电能传输 感应式系统 效率评估 安全问题
语言:

中文摘要

本研究评估了用于电动汽车的无线电力传输(WPT)技术,重点分析感应式(IPT)、电容式(CPT)和混合式(HPT)系统。通过遵循WPT标准并结合文献开展实验,测量系统效率、波形平滑度、热损耗及电磁场暴露水平。结果表明,IPT在较低频率下具有更高效率、更平稳的波形和更低的电磁辐射,且电路设计简洁,实用性更强。同时考察了地面间隙与错位对性能的影响,并探讨了三类系统的安全性问题及应对策略。

English Abstract

This study evaluated wireless power transfer (WPT) technologies for electric vehicles (EVs), focusing on inductive (IPT), capacitive (CPT), and hybrid (HPT) systems. IPT utilizes resonant magnetic fields, CPT employs resonant electric fields, and HPT combines both methods to optimize the use of electromagnetic fields and electronic components. Pilot experiments were conducted using WPT standards and the relevant literature to investigate the efficiency and practical implementation of these WPT technologies. The evaluation included measuring system efficiencies with multimeters, assessing input and output waveform smoothness using oscilloscopes, detecting power losses through thermal scans, and monitoring electromagnetic field (EMF) exposure with EMF detectors. The results demonstrated that IPT achieved higher efficiency, smoother waveforms, and lower EMF exposure than CPT and HPT at lower frequencies. Moreover, IPT has a more straightforward circuit design owing to the lack of high-frequency components, further enhancing its practicality. The study also examined the effects of ground clearance and misalignment on WPT performance, and addressed safety concerns and potential solutions for all three types of WPT systems.
S

SunView 深度解读

该研究对阳光电源新能源汽车业务线具有重要参考价值。IPT无线充电技术的高效率、低EMI特性可应用于充电桩产品升级,开发静态/动态无线充电解决方案。研究中的地面间隙与错位容差分析,可指导车载OBC与地面充电板的耦合机构设计,提升用户体验。混合式HPT系统的拓扑结构与阳光电源在SiC/GaN功率器件及三电平拓扑的技术积累高度契合,可探索高频高效无线充电变流器开发。电磁安全与热管理策略可融入iSolarCloud平台实现智能监控。该技术为阳光电源拓展电动汽车充电生态、构建差异化竞争优势提供技术路径。