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Low-Power Cool Bypass Switch for Hot Spot Prevention in Photovoltaic Panels

  • Received : 2010.12.13
  • Accepted : 2011.05.11
  • Published : 2011.12.31

Abstract

With the introduction of high-current 8-inch solar cells, conventional Schottky bypass diodes, usually adopted in photovoltaic (PV) panels to prevent the hot spot phenomenon, are becoming ineffective as they cause relatively high voltage drops with associated undue power consumption. In this paper, we present the architecture of an active circuit that reduces the aforementioned power dissipation by profitably replacing the bypass diode through a power MOS switch with its embedded driving circuitry. Experimental prototypes were fabricated and tested, showing that the proposed solution allows a reduction of the power dissipation by more than 70% compared to conventional Schottky diodes. The whole circuit does not require a dedicated DC power and is fully compatible with standard CMOS technologies. This enables its integration, even directly on the panel, thereby opening new scenarios for next generation PV systems.

Keywords

References

  1. A. Goetzberger, J. Knobloch, and B. Voss, Crystalline Silicon Solar Cells, John Wiley & Sons, 1998.
  2. J.T. Bialasiewicz, "Renewable Energy Systems with Photovoltaic Power Generators: Operation and Modeling," IEEE Trans. Ind. Electron., vol. 55, no. 7, July 2008, pp. 2752-2758. https://doi.org/10.1109/TIE.2008.920583
  3. G. Petrone, G. Spagnuolo, and M. Vitelli, "Analytical Model of Mismatched Photovoltaic Fields by Means of Lambert WFunction," Solar Energy Mater. Solar Cells, vol. 91, no. 18, Nov. 2007, pp. 1652-1657. https://doi.org/10.1016/j.solmat.2007.05.021
  4. A. Woyte, J. Nijs, and R. Belmans, "Partial Shadowing of Photovoltaic Arrays with Different System Configurations: Literature Review and Field Test Results," Solar Energy, vol. 74, no. 3, Mar. 2003, pp. 217-233. https://doi.org/10.1016/S0038-092X(03)00155-5
  5. E. Karatepe, M. Boztepe, and M. Çolak, "Development of a Suitable Model for Characterizing Photovoltaic Arrays with Shaded Solar Cells," Solar Energy, vol. 81, no. 8, Aug. 2007, pp. 977-992. https://doi.org/10.1016/j.solener.2006.12.001
  6. W. Herrmann, W. Wiesner, and W. Vaanen, "Hot Spot Investigations on PV Modules-New Concepts for a Test Standard and Consequences for Module Design with Respect to Bypass Diodes," Proc. 26th Photovoltaic Specialists Conf., Anaheim, CA, 1997.
  7. W. Herrmann et al., "Effective Hot-Spot Protection of PV Modules-Characteristics of Crystalline Silicon Cells and Consequences for Cell Production," Proc. 17th European Photovoltaic Solar Energy Conf., Munich, 2001.
  8. J. Wohlgemuth and W. Herrmann, "Hot Spot Tests for Crystalline Silicon Modules," Proc. IEEE Photovoltaic Specialists Conf., Florida, Jan. 2005, pp. 1062-1063.
  9. S. Silvestre, A. Boronat, and A. Chouder, "Study of Bypass Diodes Configuration on PV Modules," Applied Energy, vol. 86, no. 9, Sept. 2009, pp. 1632-1640. https://doi.org/10.1016/j.apenergy.2009.01.020
  10. E. Karatepe, Syafaruddin, and T. Hiyama, "Simple and High-Efficiency Photovoltaic System under Non-uniform Operating Conditions," IET Renew. Power Gener., vol. 4, no. 4, July 2010, pp. 354-368. https://doi.org/10.1049/iet-rpg.2009.0150
  11. F. Martinez-Moreno, J. Munoz, and E. Lorenzo, "Experimental Model to Estimate Shading Losses on PV Arrays," Solar Energy Materials Solar Cells, vol. 94, no. 12, Dec. 2010, pp. 2298-2303. https://doi.org/10.1016/j.solmat.2010.07.029
  12. H. Schmidt and B. Burger, "Schutzschalteinrichtung für ein Solarmodul," Deutsches Patent n. DE102005036153, Mar. 2007.
  13. M. Liu, Demystifying Switched Capacitor Circuits, Newnes-Elsevier, 2006.
  14. M. Seeman and S. Sanders, "Analysis and Optimization of Switched-Capacitor DC-DC Converters," IEEE Trans. Power Electron., vol. 23, no. 2, Mar. 2008, pp. 841-851.
  15. R. Gariboldi and F. Pulvirenti, "A 70 mΩ Intelligent High Side Switch with Full Diagnostics," IEEE J. Solid-State Circuits, vol. 31, no. 7, July 1996, pp. 915-923. https://doi.org/10.1109/4.508203
  16. C. Contiero, B. Murari, and B. Vigna "Progress in Power ICs and MEMS, "Analog" Technologies to interface the Real World," Proc. IEEE Int. Symp. Power Semiconductor Devices & ICs, Kitakyushu, 2004, pp. 1-12.
  17. http://www.st.com
  18. http://www.tuv.com/de/en/photovoltaic_components.html

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