Comprehensive Analysis of Vienna Rectifiers for Renewable Resources

Authors

  • Shaobo Xu

DOI:

https://doi.org/10.54097/k8q5mh81

Keywords:

Vienna rectifier, topological structure, circuit principle, basic control.

Abstract

The issue of energy has emerged as a significant subject of concern in contemporary discourse. The significance of the advancement of novel energy sources is progressively growing. Relevant strategies should aid in the advancement of power electronics. The rectifier is a commonly used electronic component that finds application in many circuits involving electronic equipment. Its primary function is to convert alternating current into direct current, which is then supplied to the load. The Vienna rectifier is a widely used rectifier that has garnered significant attention and scrutiny from professionals in the field of power electronics on a global scale. This article begins by illustrating the use of power electronics technology, specifically focusing on the charging pile circuit. It proceeds to discuss the classification and current research status of rectifiers. Subsequently, the article provides an overview of the circuit layout and operational principles of the Vienna rectifier circuit. This section provides an overview of the approaches and features used to optimize the operating performance of Vienna rectifiers in four key areas: current control, voltage control, neutral point voltage balance management, and harmonic stability control. This research will ultimately provide a forecast about the future development trend of Vienna rectifiers, together with a comprehensive overview of all improvement attempts.

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References

Y. Zhu, H. Wen, Q. Bu, X. Wang, Y. Hu and G. Chen. An Improved Photovoltaic Power Reserve Control with Rapid Real-Time Available Power Estimation and Drift Avoidance. IEEE Transactions on Industrial Electronics, 2023, 70(11): 11287-11298.

Wei Chang, Bin Liu, Yueyan Zhu. Trends in the automotive sector in accordance with the double-carbon target. Auto Review, 2022, 12(07): 158-160.

Yunjuan Mao. Application of contemporary electrical and electronic technology and related investigation into its evolution. Technology Innovation and Application, 2022, 12(07): 158-160.

Tao Yang. A review of the current status of electrical system electrical electronics technology. Technology Wind, 2020(05): 196.

Yongchao Zhao. Research on Electric Vehicle Charging Pile Converter and Its Control Strategy Responding to Grid Frequency Modulation. Hunan University of Technology, 2021.

Zilong Xiong. Design of High-Power Charging for Electric Vehicles based on Vienna Rectifier. Shandong University, 2022.

Tianhang Fan. Development of VIENNA Rectifier with AC/DC Input Compatible. Nanjing University of Aeronautics and Astronautics, 2021.

Shouzhong Lei. Research on DC Charging Pile System of Electric Vehicle Based on VIENNA Rectifier. Anhui Polytechnic University, 2022.

Yaai Chen, Zixuan Li, Jinghua Zhou, et al. Summary of Control Strategies for VIENNA Rectifier. Electric Drive, 2021, 51(09): 3-10.

Yongchang Zhang, Qiyan Qu, Haitao Yang. Model Free Predictive Current Control of Vienna Rectifier Based on Space Vector Modulation. Transactions of China Electrotechnical Society, 2022, 37(21): 5541-5547.

Zhaocheng Shi. Research on Current Control Strategy of Three-phase VIENNA Rectifier in Wide-range-Unbalanced Grid Conditions. Nanjing University of Science and Technology, 2021.

Yunhong Zhou, Aimin Zhang, Hang Zhang, et al. A Resonance Sliding Mode Control Strategy for Vienna Rectifier under Unbalanced Voltage Conditions. Journal of Xi'an Jiaotong University, 2020, 54(04): 76-84.

Xuhong Yang, Yang Chen, Wei Jia, et al. Vienna rectifier with voltage outer loop sliding mode control based on an RBF neural network. Power System Protection and Control, 2022 ,50(18): 103-115.

Deyang Zhang, Wenjing Chang, Haihong Huang. VIENNA Rectifier Midpoint Potential Fluctuation Principle and Balance Method. Low Voltage Apparatus, 2021(12): 47-51.

Dangshu Wang, Yaqiang Yang, Jiaan Yi, et al. Improved SVPWM Strategy for VIENNA Rectifier with Midpoint Balance. Journal of Guangxi Normal University (Natural Science Edition), 2023, 41(01): 67-75.

Yuchao Yuan. STRATEGY OF VIENNA RECTIFIERHARMONIC RESONANCE SUPPRESSION. Yanshan University, 2022.

Wenjie Zhu, Cong Ren, Ying Xu, et al. Current Harmonic Suppression of Vienna Rectifier Based on Sliding Mode Control. Electric Engineering, 2022(11): 36-39.

Boxue Zhang. Research on Modulation and Control Strategy of Vienna Rectifier. Shandong University, 2023.

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Published

26-01-2024

How to Cite

Xu, S. (2024). Comprehensive Analysis of Vienna Rectifiers for Renewable Resources. Highlights in Science, Engineering and Technology, 81, 38-48. https://doi.org/10.54097/k8q5mh81