Optimized capacitive active ripple compensation topology for a 3.7 kW single-phase high power density on-board charger of electric vehicles

被引:0
|
作者
Issa Hammoud
Nikolas Bauer
Ingmar Kallfass
Ralph Kennel
机构
[1] Technical University of Munich (TUM),Institute for Electrical Drive Systems and Power Electronics
[2] University of Stuttgart,Institute of Robust Power Semiconductor Systems
来源
Electrical Engineering | 2019年 / 101卷
关键词
Active ripple compensation; Power filter; Power decoupling; Buck converter; On-board charger; Electric vehicles;
D O I
暂无
中图分类号
学科分类号
摘要
In this paper, a comprehensive investigation of the capacitive active ripple compensation (ARC) techniques is made to conclude which one is optimal to be used in on-board chargers of electric vehicles. Crucial aspects in such an application are: lifetime, volumetric and specific power density (including components’ size and the needed cooling solution), and overall efficiency of the charger. As presented in this paper, all capacitive ARC topologies (buck, boost, and buck–boost) have successfully diverted the low-frequency ripple from the dc side with a maximized power density. The ARC circuit consists of two additional switches, a smoothing auxiliary inductor, and a storage auxiliary capacitor. Finally, the buck capacitive ARC topology proves to be the optimal ARC technique for on-board chargers because of its maximal power density, minimal loss behavior and voltage stress, and long lifetime capability as it requires a downsized capacitance to the extent, where film capacitors or ceramic capacitors can replace the normally used bulky electrolytic capacitors. The performance of the three capacitive ARC techniques is proved by simulation results.
引用
下载
收藏
页码:685 / 697
页数:12
相关论文
共 50 条
  • [1] Optimized capacitive active ripple compensation topology for a 3.7 kW single-phase high power density on-board charger of electric vehicles
    Hammoud, Issa
    Bauer, Nikolas
    Kallfass, Ingmar
    Kennel, Ralph
    ELECTRICAL ENGINEERING, 2019, 101 (03) : 685 - 697
  • [2] A High Power Density Integrated Charger for Electric Vehicles with Active Ripple Compensation
    Pan, Liwen
    Zhang, Chengning
    MATHEMATICAL PROBLEMS IN ENGINEERING, 2015, 2015
  • [3] A review of on-board integrated electric vehicles charger and a new single-phase integrated charger
    Na T.
    Yuan X.
    Tang J.
    Zhang Q.
    CPSS Transactions on Power Electronics and Applications, 2019, 4 (04): : 288 - 298
  • [4] On-board Single-Phase Electric Vehicle Charger with Active Front End
    Soong, Theodore
    Lehn, Peter W.
    2018 INTERNATIONAL POWER ELECTRONICS CONFERENCE (IPEC-NIIGATA 2018 -ECCE ASIA), 2018, : 3203 - 3208
  • [5] Design and Analysis of High Power Density On-Board Charger with Active Power Decoupling Circuit for Electric Vehicles
    Son, Won-Jin
    Lee, Byoung Kuk
    ENERGIES, 2023, 16 (21)
  • [6] High-Performance Single-Phase Bi-Directional Novel On-Board Charger for Electric Vehicles
    Ali, Md Inayat
    Mandal, Rajib
    Kumar, Amitesh
    ENERGY STORAGE, 2024, 6 (05)
  • [7] Single-Phase Bidirectional On-Board Charger Using Starter Generator System in Hybrid Electric Vehicles
    Kim, Seok-Min
    Kang, Ho-Sung
    Lee, Kyo-Beum
    ELECTRONICS, 2018, 7 (11):
  • [8] Three-phase 11 kW on-board charger with single-phase reverse function
    Mun, Seung-Hwan
    Choi, Seung-Won
    Hong, Dae-Young
    Kong, So-Jeong
    Lee, Jun-Young
    JOURNAL OF POWER ELECTRONICS, 2022, 22 (08) : 1255 - 1264
  • [9] Three-phase 11 kW on-board charger with single-phase reverse function
    Seung-Hwan Mun
    Seung-Won Choi
    Dae-Young Hong
    So-Jeong Kong
    Jun-Young Lee
    Journal of Power Electronics, 2022, 22 : 1255 - 1264
  • [10] Challenges Facing PFC of a Single-Phase On-Board Charger for Electric Vehicles Based on a Current Source Active Rectifier Input Stage
    Saber, Christelle
    Labrousse, Denis
    Revol, Bertrand
    Gascher, Alain
    IEEE TRANSACTIONS ON POWER ELECTRONICS, 2016, 31 (09) : 6192 - 6202