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Abstract Micro-inverters are one of the many solutions to inject PV energy into the grid. They are usually composed of two stages: a first DC-DC stage that allows performing the MPPT (Maximum Power Point Tracking) function, adding galvanic isolation and raising the voltage to ease the operation of a second stage, the solar Grid Tie Inverter. An interesting and attractive proposal for this first stage is the Flyback converter due to simplicity, isolation, and few components, among others. Unfortunately, for power ratings of 400 W and higher, the problems arising from the leakage inductance of the transformer make it unfeasible. A modification of this converter is the so-called Two-Switch Flyback (TSF). By means of extra components, energy normally lost in this leakage inductance is recirculated to the input. However, the design region becomes narrower, making it difficult to be used in some applications like in an MPPT. This work proposes a modification of TSF by incorporating an auxiliary DC-DC converter denoted as Active Clamp Converter (ACC). This modification of the original TSF allows recovering the energy from the leakage inductance and sending it to the output of the converter, thus avoiding energy recirculation. The proposed topology, with the modification introduced, is a novel solution which improves the efficiency compared to the classical TSF stage.
Authors and affiliations Rico-Secades Manuel, Quintana-Barcia Pablo, Ribas Javier, Calleja Antonio-Javier, Lopez-Corominas, Emilio and Chinchero Hector Department of Electrical, Electronics, Communications and Systems (DIEECS). Polytechnics Engineering School of Gijon (EPI-GIJON), Oviedo University. Campus of Gijon, 33204 Gijon-Asturias (Spain) Key words Micro-inverter, Maximum Power Point Tracking (MPPT), Two-Switch Flyback (TSF), PV-solar panel, Active Clamp Converter (ACC). References [1] M. A. Rezaei, K. J. Lee, and A. Q. Huang, “A high efficiency flyback micro-inverter with a new adaptive snubber for photovoltaic applications,” 2015 IEEE Energy Convers. Congr. Expo. ECCE 2015, vol. 31, no. 1, pp. 3308–3313, 2015, doi: 10.1109/ECCE.2015.7310126. [2] G. H. Min, K. H. Lee, J. I. Ha, and M. H. Kim, “Design and Control of Single-Phase Grid-Connected Photovoltaic Microinverter with Reactive Power Support Capability,” 2018 Int. Power Electron. Conf. IPEC-Niigata - ECCE Asia 2018, pp. 2500–2504, 2018, doi: 10.23919/IPEC.2018.8507578. [3] D. Lopez, F. Flores-Bahamonde, H. Renaudineau, and S. Kouro, “Double voltage step-up photovoltaic microinverter,” Proc. IEEE Int. Conf. Ind. Technol., pp. 406–411, 2017, doi: 10.1109/ICIT.2017.7913265. [4] S. S. Converter and S. Inverter, “Highly Efficient Microinverter With,” IEEE Trans. Ind. Electron., vol. 62, no. 6, pp. 3516–3523, 2015. [5] B. G. Bhang, W. Lee, G. G. Kim, J. H. Choi, S. Y. Park, and H. K. Ahn, “Power Performance of Bifacial c-Si PV Modules with Different Shading Ratios,” IEEE J. Photovoltaics, vol. 9, no. 5, pp. 1413–1420, 2019, doi: 10.1109/JPHOTOV.2019.2928461. [6] A. Abramovitz, C. S. Liao, and K. Smedley, “State-plane analysis of regenerative Snubber for Flyback converters,” IEEE Trans. Power Electron., vol. 28, no. 11, pp. 5323–5332, 2013, doi: 10.1109/TPEL.2013.2243845. [7] A. Mukherjee, M. Pahlevaninezhad, and G. Moschopoulos, “A passive snubber circuit for flyback microinverters in solar energy systems,” Conf. Proc. - IEEE Appl. Power Electron. Conf. Expo. - APEC, pp. 3236–3240, 2013, doi: 10.1109/APEC.2013.6520763. [8] C. W. Lin and Y. Y. Tzou, “Digital primary-side sensing and PFC control of a flyback converter,” IEEE Energy Convers. Congr. Expo. Energy Convers. Innov. a Clean Energy Futur. ECCE 2011, Proc., pp. 2603–2608, 2011, doi: 10.1109/ECCE.2011.6064116. [9] A. Al Mamun, M. I. I. Sakib, K. F. I. Faruque, M. R. Uddin, and K. M. Salim, “A Grid-Tie Microinverter Design Based on Dual-Switch Flyback Topology for Solar PV Application,” 8th Int. Conf. Eng. Emerg. Technol. ICEET 2022, no. October, pp. 27–28, 2022, doi: 10.1109/ICEET56468.2022.10007209. [10] H. Choi, “Two-switch BCM flyback single-stage PFC for HB LED lighting applications,” Conf. Proc. - IEEE Appl. Power Electron. Conf. Expo. - APEC, pp. 3125–3130, 2013, doi: 10.1109/APEC.2013.6520747. [11] M. G. Kim and Y. S. Jung, “A novel soft-switching two-switch flyback converter with a wide operating range and regenerative clamping,” J. Power Electron., vol. 9, no. 5, pp. 772–780, 2009. |
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