30kw电动汽车充电器动态无线电力传输系统的设计、模型和控制

IF 4.9 2区 工程技术 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Journal of Emerging and Selected Topics in Power Electronics Pub Date : 2025-01-22 DOI:10.1109/JESTPE.2025.3532851
Zariff Meira Gomes;Edemar de Oliveira Prado;Yann Le Gall;Gilney Damm;Christophe Ripoll;José Renes Pinheiro
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引用次数: 0

摘要

本文介绍了一种用于30kw电动汽车充电器的动态无线电力传输(DWPT)系统的设计、模型和控制。该系统允许电动汽车在道路上行驶时接收电力,保存甚至给内部电池充电。该系统的主要特点是沿道路嵌入初级线圈,由直流(dc)/交流(ac)转换器连接到直流母线供电。本文介绍了系统概况及其数学模型,考虑了自感和互感随时间的动态行为。此外,提出了一种基于感应电流的初级线圈选择和激活的测序技术,该技术考虑了次级线圈的运动和错位,而不依赖于传感器或定时方法的存在。为了优化电力输出,设计了一种改进的极值寻优控制,用于自动跟踪谐振频率并保证电力电子元件的软开关。这种设计使系统组件在预定的频率范围和功率范围内工作,从而提高了整体效率。采用Stellantis公司的DS3 Crossback汽车对该系统进行了仿真和全尺寸实验验证,在动态条件下为车辆充电高达30千瓦。结果显示,在18米的电气道路上,从初级侧的直流母线到电池的最高效率为90.2%,突出了该系统的鲁棒性和有效性。
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Design, Model, and Control of a Dynamic Wireless Power Transfer System for a 30-kW Electric Vehicle Charger Application
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.
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来源期刊
CiteScore
12.50
自引率
9.10%
发文量
547
审稿时长
3 months
期刊介绍: The aim of the journal is to enable the power electronics community to address the emerging and selected topics in power electronics in an agile fashion. It is a forum where multidisciplinary and discriminating technologies and applications are discussed by and for both practitioners and researchers on timely topics in power electronics from components to systems.
期刊最新文献
Fault-Tolerant Topology and Online Diagnosis for Rectifier Open-Circuit Faults in Constant-Current IPT Systems On the Efficiency Limits and Electric Field Stresses of Wireless Charging for Electric Buses: A 50-kW Experimental Study Based on Opportunity Charging A Dual-Frequency Wireless Integrated Charging System With Enhanced Mutual Inductance and Misalignment Tolerance for Electric Vehicles A Bidirectional Constant-Power Double-Sided LCC Inductive Wireless Charger With Adaptive Constant-Power Optimal Efficiency Control Strategy Output Fluctuation Suppression Methods for Dynamic Wireless Charging System of Electric Vehicle Based on Picking Coil Optimization and Load Parameters Estimation
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