← 返回
储能系统技术 储能系统 充电桩 ★ 5.0

30千瓦电动汽车充电应用的动态无线电力传输系统设计、建模与控制

Design, Model, and Control of a Dynamic Wireless Power Transfer System for a 30-kW Electric Vehicle Charger Application

语言:

中文摘要

本文提出了一种用于30千瓦电动汽车充电的动态无线电力传输(DWPT)系统的设计、建模与控制方法。该系统可在车辆行驶过程中实现电能补给,维持或充电车载电池。系统采用埋设于路面的初级线圈,由连接直流母线的直交变换器供电。文中建立了包含自感与互感动态变化的数学模型,并提出基于感应电流的初级线圈选通时序策略,无需传感器或定时机制即可应对次级线圈运动与偏移。为优化功率传输,设计了改进型极值搜索控制以自主跟踪谐振频率并实现软开关。通过仿真与Stellantis DS3 Crossback实车全尺寸实验验证,系统在18米电气化道路下实现最高90.2%的直流母线至电池效率,展现了良好的鲁棒性与有效性。

English Abstract

This article presents the design, model, and control of a dynamic wireless power transfer (DWPT) system for a 30-kW electric vehicle charger application. This system allows electric vehicles to receive electric power while running along a road, preserving or even charging its internal battery. The system features primary coils embedded along the road, powered by direct current (dc)/alternate current (ac) converters connected to a dc bus. The article presents the system overview and its mathematical model, considering the dynamic behavior of self-inductance and mutual inductance over time. In addition, a sequencing technique is presented for primary coil selection and activation based on induced current, accounting for motion and misalignment of the secondary coil without relying on the presence of sensors or timing methods. To optimize power delivery, a modified extremum seeking control is designed for autonomously tracking resonance frequency and ensuring soft-switching of power electronic components. This design aligns system components to operate within a predetermined frequency range and power, enhancing overall efficiency. The presented DWPT system is demonstrated through simulations and validated in full-scale experiments using a DS3 Crossback car from Stellantis, recharging the vehicle up to 30 kW under dynamic conditions. Results showcase a maximum efficiency of 90.2% from the dc bus on the primary side to the battery over an 18-m electrical road, highlighting the robustness and effectiveness of the system.
S

SunView 深度解读

该DWPT动态无线充电技术对阳光电源充电桩产品线具有前瞻性应用价值。文中提出的无传感器初级线圈选通策略和改进型极值搜索控制算法,可借鉴应用于阳光电源车载OBC充电机的自适应控制优化,提升充电效率和鲁棒性。30kW功率等级的直交变换器设计与软开关技术,与阳光电源充电桩的功率变换架构高度契合,其90.2%的直流母线至电池效率为产品优化提供参考基准。动态互感建模方法可启发ST储能变流器在电网阻抗动态变化场景下的控制策略改进。该技术代表未来电动汽车充电基础设施演进方向,对阳光电源布局智能交通能源生态具有战略意义。