Modelling and Analysis of Vienna Rectifier for Electric Vehicle Charging Stations

被引:0
作者
Bharaneedharan, B. [1 ]
Suresh, P. [1 ]
Senthilkumar, D. [1 ]
Murali, P. [2 ]
Zhenxiong, L. [3 ]
机构
[1] Dept. Electrical & Electronics Engg, SRM Inst. of Sci. & Tech, Kattankulathur, Tamil Nadu, Chennai
[2] Dept. Computer Sci. Engg, Saveetha School of Engg, Saveetha Inst. Medical & Tech. Sci, Thandalam, Tamil Nadu, Chennai
[3] Faculty of Education, Shinawatra University, 99, Bang Toei, Sam Khok District, Pathum Thani
关键词
Bharat AC 001 and DC001 standard; Buck converter; Electric vehicle; Energy efficiency; Vienna rectifier;
D O I
10.4273/ijvss.16.5.18
中图分类号
学科分类号
摘要
The first electric vehicles (EVs) debuted in the last decades of the nineteenth century when electricity was becoming increasingly popular to power motor vehicles. EVs power the battery packs with electricity rather than petroleum-based energy sources like gasoline or diesel. EV chargers will significantly influence the adoption of EVs. A battery is required to power the EV. Since this battery needs to be charged regularly, the reduced grid-side power factor in existing converters is caused by increased input current harmonics, which occurs only under extreme conditions. The Vienna rectifier is superior to other options for excess power due to its ability to raise the voltage at the output, diminish ripple and enhance efficiency and power factor. The Vienna Rectifier is an excellent front-side converter for applications requiring rapid DC battery charging. Here, the proposed charger charges the batteries using a two-stage conversion system consisting of a Vienna rectifier and buck converter. An EV can be charged using a variety of methods where several complicated parameters are required, as well as AC and DC charging at high power levels. To facilitate this, the Indian government developed Bharat DC 001, the standard for Direct Current (DC) charging and Bharat AC 001, the standard for Alternating Current (AC) charging, for EV chargers. The Bharat EV Charger Protocol was created expressly to regulate India's EV charging ecosystem. Based on the Bharat DC001 standard, this work suggests a two-way DC rapid charger. The Bharat DC001 standards for EV charging stations can simultaneously power two EV batteries with ratings of 72 and 48 volts at charging levels of up to 14.5 kW and 9.6 kW, respectively. The paper provides an analysis of the proposed Vienna rectifier topology and derives the mathematics model from a three-level vector to a two-level vector model. In addition, a well-known SVPWM control technique is implemented to enhance input-side power quality, reduce switching losses and reduce the total harmonic distortion value. Thus, the proposed architecture with its control technique is simulated using MATLAB/SIMULINK to validate the results. © 2024. Carbon Magics Ltd.
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页码:744 / 752
页数:8
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共 39 条
  • [1] Wang C., Song J., Shi D., Reyna J.L., Horsey H., Feron S., Zhou Y., Ouyang Z., Li Y., Jackson R.B., Impacts of climate change, population growth and power sector decarbonization on urban building energy use, Nature Comm, 14, 1, (2023)
  • [2] Mali B., Shrestha A., Chapagain A., Bishwokarma R., Kumar P., Gonzalez-Longatt F., Challenges in the penetration of electric vehicles in developing countries with a focus on Nepal, Renewable Energy Focus, 40, pp. 1-12, (2021)
  • [3] Neaimeh M., Salisbury S.D., Hill G.A., Blythe P.T., Scoffield D.R., Francfort J.E., Analysing the usage and evidencing the importance of fast chargers for the adoption of battery electric vehicles, Energy Policy, 108, pp. 474-486, (2017)
  • [4] Lee J.S., Lee K.B., Blaabjerg F., Predictive control with discrete space-vector modulation of vienna rectifier for driving pmsg of wind turbine systems, IEEE Trans. Power Electronics, 34, 12, pp. 12368-12383, (2019)
  • [5] Miao Z., Tong H., Jin X., Yao W., Lu Z., Ma Z., DQ-Frame zero-crossing effect modeling and current distortion compensation method for vienna rectifier, IEEE Trans. Power Electronics, 35, 7, pp. 7612-7623, (2020)
  • [6] Ding W., Zhang C., Gao F., Duan B., Qiu H., A zero-sequence component injection modulation method with compensation for current harmonic mitigation of a vienna rectifier, IEEE Trans. Power Electronics, 34, 1, pp. 801-814, (2019)
  • [7] Bharaneedharan B., Suresh P., Elumalai P.V., Asif M., Energy-efficient vienna rectifier for electric vehicle battery charging stations, Results Engg, 23, (2024)
  • [8] Dalessandro L., Round S.D., Drofenik U., Kolar J.W., Discontinuous space-vector modulation for three-level PWM rectifiers, IEEE Trans. Power Electronics, 23, 2, pp. 530-542, (2008)
  • [9] Hang L., Li B., Zhang M., Wang Y., Tolbert L.M., Equivalence of SVM and carrier-based PWM in three-phase/wire/level vienna rectifier and capability of unbalanced-load control, IEEE Trans. Industrial Electronics, 61, 1, pp. 20-28, (2014)
  • [10] Lee J.S., Lee K.B., Performance analysis of carrier-based discontinuous PWM method for vienna rectifiers with neutral-point voltage balance, IEEE Trans. Power Electronics, 31, 6, pp. 4075-4084, (2016)