A Study on the Device Topology and Control Strategy of a Hybrid Three-Port Photovoltaic Energy Storage Grid-Connected Converter
Abstract
:1. Introduction
2. Topology and Principle of Composite Three-Port Optical Storage Grid-Connected Converter
2.1. Converter Topology
2.2. Zigzag Transformer
2.3. Working Principle
2.4. AC/DC Power Loop
2.5. DC/DC Power Loop
3. Based on Hybrid Current Control Strategy
3.1. AC Power Control
3.2. DC Power Control
4. Simulation Verification
Model | Manufacturer | Features |
TPD6E05U06 | Texas Instruments (Dallas, TX, USA) | 6 channels, 0.5 pF capacitance, ±15 kV ESD, response time 0.3 ns |
ESD7004 | STMicroelectronics (Geneva, Switzerland) | 8 channels, 0.3 pF capacitance, ±20 kV ESD, ultra-low clamp voltage (7 V~8 A) |
4.1. The Phased Results of the Output Current of the Converter Connected to the Grid Are Obtained
4.2. Output Effect of Active Current
4.3. Current Output Conclusion
5. Conclusions
- (1)
- The converter uses a zigzagging transformer to effectively suppress the effect of the core DC magnetic flux, and can offset the DC component in the winding when the DC bias fault occurs, so as to avoid the core magnetic flux offset and achieve the purpose of enhancing the reliability of the hybrid system containing battery units.
- (2)
- The topology adopts a two-ring hybrid current control strategy including an improved direct voltage ring and current ring in the coordinated control of photovoltaic energy storage power, and can modulate signals through PWM.
- (3)
- The converter has stable DC voltage during steady operation, and can realize the function of stable three-port power flow, effectively maintaining THD below 3%.
- (4)
- Therefore, the control strategy of the composite three-port optical storage grid-connected converter proposed in this paper is suitable for low-cost and high-efficiency optical storage grid-connected systems.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Eftekharnejad, S.; Vittal, V.; Keel, B.; Loehr, J.; Heydt, G.T. Impact of Increased Penetration of Photovoltaic Generation on Power Systems. IEEE Trans. Power Syst. 2013, 28, 893–901. [Google Scholar] [CrossRef]
- Omran, W.A.; Kazerani, M.; Salama, M. Investigation of Methods for Reduction of Power Fluctuations Generated from Large Grid-Connected Photovoltaic Systems. IEEE Trans. Energy Convers. 2011, 26, 318–327. [Google Scholar] [CrossRef]
- Tian, Q.; Zhou, G.; Liu, R.; Zhang, X.; Leng, M. Topology Synthesis of a Family of Integrated Three-Port Converters for Renewable Energy System Applications. IEEE Trans. Ind. Electron. 2021, 68, 5833–5846. [Google Scholar] [CrossRef]
- Liu, H.; Xie, X.; He, J.; Xu, T.; Yu, Z.; Wang, C.; Zhang, C. Subsynchronous Interaction Between Direct-Drive PMSG Based Wind Farms and Weak AC Networks. IEEE Trans. Power Syst. 2017, 32, 4708–4720. [Google Scholar] [CrossRef]
- Meneses, D.; Blaabjerg, F.; García, O.; Cobos, J.A. Review and Comparison of Step-Up Transformerless Topologies for Photovoltaic AC-Module Application. IEEE Trans. Power Electron. 2013, 28, 2649–2663. [Google Scholar] [CrossRef]
- Wu, H.; Zhang, J.; Qin, X.; Mu, T.; Xing, Y. Secondary-Side-Regulated Soft-Switching Full-Bridge Three-Port Converter Based on Bridgeless Boost Rectifier and Bidirectional Converter for Multiple Energy Interface. IEEE Trans. Power Electron. 2016, 31, 4847–4860. [Google Scholar] [CrossRef]
- LaBella, T.; Yu, W.; Lai, J.-S.; Senesky, M.; Anderson, D. A Bidirectional-Switch-Based Wide-Input Range High-Efficiency Isolated Resonant Converter for Photo-voltaic Applications. IEEE Trans. Power Electron. 2014, 29, 3473–3484. [Google Scholar] [CrossRef]
- Zhang, Q.; Qian, J.; Zhai, Z.; Liu, X.; Liu, S.; Fang, W.; Liu, H.; Abusara, M. Control stability of inverters with series-compensated transmission lines: Analysis and improvement. J. Power Electron. 2022, 22, 1746–1757. [Google Scholar] [CrossRef]
- Neira, S.; Pereda, J.; Rojas, F. Three-Port Full-Bridge Bidirectional Converter for Hybrid DC/DC/AC Systems. IEEE Trans. Power Electron. 2020, 35, 13077–13084. [Google Scholar] [CrossRef]
- Sun, X.; Shen, Y.; Li, W.; Wu, H. A PWM and PFM Hybrid Modulated Three-Port Converter for a Standalone PV/Battery Power System. IEEE J. Emerg. Sel. Top. Power Electron. 2015, 3, 984–1000. [Google Scholar] [CrossRef]
- Yang, R.; Shi, G.; Cai, X.; Zhang, C.; Li, G.; Liang, J. Autonomous Synchronizing and Frequency Response Control of Multi-terminal DC Systems With Wind Farm Integration. IEEE Trans. Sustain. Energy 2020, 11, 2504–2514. [Google Scholar] [CrossRef]
- Wang, Z.; Yi, H.; Jiang, Y.; Bai, Y.; Zhang, X.; Zhuo, F.; Wang, F.; Liu, X. Voltage Control and Power-Shortage Mode Switch of PV Inverter in the Islanded Microgrid Without Other Energy Sources. IEEE Trans. Energy Convers. 2022, 37, 2826–2836. [Google Scholar] [CrossRef]
- Zhong, C.; Zhou, Y.; Chen, J.; Liu, Z. DC-side synchronous active power control of two-stage photovoltaic generation for frequency support in Islanded microgrids. Energy Rep. 2022, 8, 8361–8371. [Google Scholar] [CrossRef]
- Shetty, A.; Fernandes, B.G.; Ojo, O.; Ferreira, J.A. Low-voltage PV power integration for variable frequency drives application. In Proceedings of the 2017 19th European Conference on Power Electronics and Applications (EPE’17 ECCE Europe), Warsaw, Poland, 11–14 September 2017; IEEE: New York, NY, USA, 2017; pp. 1–10. [Google Scholar]
- Young, C.M.; Wu, S.; Liao, P.C. A new multilevel inverter based on single DC input source and zig-zag connected transformers. In Proceedings of the 2011 6th IEEE Conference on Industrial Electronics and Applications, Beijing, China, 21–23 June 2011; IEEE: New York, NY, USA, 2011; pp. 692–697. [Google Scholar]
- Peng, M.; Sun, J.; Liu, Y.; Zha, X.; Huang, M. Self-Excited Three-Port Converter for Photovoltaic Application with Stability Enhancement. IEEE Trans. Ind. Electron. 2024, 71, 8862–8871. [Google Scholar] [CrossRef]
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Shi, C.; Wang, S. A Study on the Device Topology and Control Strategy of a Hybrid Three-Port Photovoltaic Energy Storage Grid-Connected Converter. Electronics 2025, 14, 1966. https://doi.org/10.3390/electronics14101966
Shi C, Wang S. A Study on the Device Topology and Control Strategy of a Hybrid Three-Port Photovoltaic Energy Storage Grid-Connected Converter. Electronics. 2025; 14(10):1966. https://doi.org/10.3390/electronics14101966
Chicago/Turabian StyleShi, Chen, and Shuqing Wang. 2025. "A Study on the Device Topology and Control Strategy of a Hybrid Three-Port Photovoltaic Energy Storage Grid-Connected Converter" Electronics 14, no. 10: 1966. https://doi.org/10.3390/electronics14101966
APA StyleShi, C., & Wang, S. (2025). A Study on the Device Topology and Control Strategy of a Hybrid Three-Port Photovoltaic Energy Storage Grid-Connected Converter. Electronics, 14(10), 1966. https://doi.org/10.3390/electronics14101966