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Prediction and Accuracy Analysis of Photovoltaic Module Temperature based on Predictive Models in Summer

예측모델에 따른 태양광발전시스템의 하절기 모듈온도 예측 및 정확도 분석

  • Lee, Yea-Ji (Department of Architectural Design and Engineering, Incheon National University) ;
  • Kim, Yong-Shik (Division of Architecture & Urban Planning, Incheon National University)
  • 이예지 (인천대학교 대학원 건축학과) ;
  • 김용식 (인천대학교 도시건축학부)
  • Received : 2016.11.25
  • Accepted : 2016.02.09
  • Published : 2017.02.28

Abstract

Climate change and environmental pollution are becoming serious due to the use of fossil energy. For this reason, renewable energy systems are increasing, especially photovoltaic systems being more popular. The photovoltaic system has characteristics that are affected by ambient weather conditions such as insolation, outside temperature, wind speed. Particularly, it has been confirmed that the performance of the photovoltaic system decreases as the module temperature increases. In order to grasp the influence of the module temperature in advance, several researchers have proposed the prediction models on the module temperature. In this paper, we predicted the module temperature using the aforementioned prediction model on the basis of the weather conditions in Incheon, South Korea during July and August. The influence of weather conditions (i.e. insolation, outside temperature, and wind speed) on the accuracy of the prediction models was also evaluated using the standard statistical metrics such as RMSE, MAD, and MAPE. The results show that the prediction accuracy is reduced by 3.9 times and 1.9 times as the insolation and outside temperature increased respectively. On the other hand, the accuracy increased by 6.3 times as the wind speed increased.

Keywords

References

  1. Eom, J. Y., Jang, H. I., and Yoon, S, H., The Status Analysis of BIPV System Module in Public Buildings Based on Obligation System of New & Renewable. Journal of the architectural institute of Korea planning & design, Vol. 29, No. 4, pp. 259-266, 2013. https://doi.org/10.5659/JAIK_PD.2013.29.4.259
  2. Mavromatakis, F., Kavoussanaki, E., Vignola, F., and Franghiadakis, Y., Measuring and Estimating the Temperature of Photovoltaic Modules. Solar Energy, Vol. 110, pp. 656-666, 2014. https://doi.org/10.1016/j.solener.2014.10.009
  3. Rouschenbach, H. S., Solar Cell Array Design Handbook, Van Nostrand Reinhold, pp. 390-391, 1980.
  4. King, D. L., Kratochwil, J. A., Boyson, W. E., and Bower, W. I., Field Experience with a New Performance Characterization Procedure for Photovoltaic Arrays. In: 2nd World Conference and Exhibition on Photovoltaic Solar Energy Conversion, 1998.
  5. Duffie, J. A., and Bechman W. A., Solar Engineering of Thermal Processes. 3rd Edition. John Wiley and Sons Inc, 2006.
  6. Radziemska E., The Effect of Temperature on the Power Drop in Crystalline Silicon Solar Cells. Renewable Energy, Vol. 28, No. 1, pp. 1-12, 2003. https://doi.org/10.1016/S0960-1481(02)00015-0
  7. Dubey S., Sandhu G. S., Tiwari G. N., Analytical Expression for Electrical Efficiency of PV/T Hybrid Air Collector. Applied Energy, Vol. 86, No. 5, pp. 697-705, 2009. https://doi.org/10.1016/j.apenergy.2008.09.003
  8. King, D. L., Photovoltaic Module and Array Performance Characterization Methods for All System Operating Conditions. Proceeding of NREL/SNL Photovoltaic Program Reviw Meeting, Sandia National Laboratories, 1996.
  9. King, D. L., Boyson, W. E., and Kratochwil, J. A., Photovoltaic Array Performance Model. Sandia National Laboratories, SAND2004-3535, 2004.

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