DOI QR코드

DOI QR Code

공기식 태양광/열 시스템 공기채널 내 여러 저항체 설치에 따른 전열성능에 관한 CFD 해석

CFD Analysis on the Heat Transfer Performance with Various Obstacles in Air Channel of Air-Type PV/Thermal Module

  • 최휘웅 (부경대학교 냉동공조공학과 대학원) ;
  • 파쿠르 로커만 (부경대학교 냉동공조공학과 대학원) ;
  • 김영복 (부경대학교 기계시스템공학과) ;
  • 윤정인 (부경대학교 냉동공조공학과) ;
  • 손창효 (부경대학교 냉동공조공학과) ;
  • 최광환 (부경대학교 냉동공조공학과)
  • Choi, Hwi-Ung (Graduate School of Refrigeration and Air-conditioning Engineering, Pukyong National University) ;
  • Fatkhur, Rokhman (Graduate School of Refrigeration and Air-conditioning Engineering, Pukyong National University) ;
  • Kim, Young-Bok (Dept. of Mechanical System Engineering, Pukyong National University) ;
  • Yoon, Jung-In (Dept. of Refrigeration and Air-conditioning Engineering, Pukyong National University) ;
  • Son, Chang-Hyo (Dept. of Refrigeration and Air-conditioning Engineering, Pukyong National University) ;
  • Choi, Kwang-Hwan (Dept. of Refrigeration and Air-conditioning Engineering, Pukyong National University)
  • 투고 : 2017.12.28
  • 심사 : 2018.04.23
  • 발행 : 2018.04.30

초록

PV/Thermal module is the combined system, which consist of a photovoltaic module and solar thermal collector that can obtain electrical power and thermal energy simultaneously. Thus the power generation can be increase by decreasing the temperature of photovoltaic module and thermal energy retrieved from module also can be used for heating system. In this study, Heat transfer performance of air type PV/Thermal module was confirmed with various bottom obstacles that can be installed easily to real photovoltaic module by CFD (computational fluid dynamics) analysis. Eight type obstacles were investigated according to the shape and arrangement. As a result, nusselt number represent heat transfer performance was increased about 86% compare with the basic type PV/Tthermal module that has no obstacle and triangle type obstacle had higher value than other types. But pressure drop was also increased with increment of heat transfer enhancement. Thus the performance factor considering both heat transfer and pressure drop was confirmed and V-fin type obstacle arranged in a row for Reynolds number below 9,600 and protrusion type obstacle arranged in zigzag for Reynolds number above 14,400 were shown higher performance factor than other types. From these results, V-fin type obstacle arranged in row and protrusion type obstacle arranged in zigzag were considered as a proper type for applying to real PV/thermal module according to operating condition. But the heat transfer performance can be changed by the geometric conditions of obstacle such as height, width, length and arrangement. Thus, it could also confirmed that the optimal condition and arrangement of this obstacle need to be found in further study.

키워드

참고문헌

  1. Renewable Energy Center, 2016 NEW & RENEWABLE ENERGY WHITE PAPER, KOREA ENERGY AGENCY, Republic of Korea, 2016.
  2. Kim, J. H. and Kim, J. T., A Literature Review on Hybrid PV/Thermal Air Collector in therms of its Design and Performance, Journal of the Korean Solar Energy Society, Vol. 34, No. 3, pp. 30-41, 2014. https://doi.org/10.7836/kses.2014.34.3.030
  3. Kang, J. G., Kim, J. H., and Kim, J. T., A Study on the Performance Comparisons of Air Type BIPVT Collector Applied on Roofs and Facades, Journal of the Korean Solar Energy Society, Vol. 30, No. 5, pp. 56-62, 2010.
  4. Park, S. H., Kim, J. H., and Kim, J. T., The Simulation Performance Study of Heat Recovery Ventilation System with Air Type PV/T Collector, Proceedings of the KSES 2012 Autumn Annual Conference, Vol. 32, No. 2, pp. 271-275, 2012.
  5. Euh, S. H., Lee, J. B., Choi, Y. S., and Kim, D. H., The Performance and Efficiency Analysis of a PVT System Compared with a PV module and a Solar collector, Journal of the Korean Solar Energy Society, Vol. 32, No. 2, pp. 1-10, 2012. https://doi.org/10.7836/kses.2012.32.2.001
  6. Kim, J. H., Kang, J. G. and Kim, J. T., The Experimental Performance Comparison of a Water Type Glazed and Unglazed PV-Thermal Combined Modules, Proceedings of the SAREK 2009 Summer Annual Conference, pp. 792-797, 2009.
  7. Jeong, S. O., Kim, J. H., and Kim, J. T., The Experimental Performance Analysis of Heating System with Building-Integrated Photovoltaic/Thermal Module, Proceedings of the KSES 2012 Autumn Annual Conference, Vol. 32, No. 2, pp. 276-281, 2012.
  8. Tripanagnostopoulos, Y., Aspects and Improvements of Hybrid Photovoltaic/thermal Solar Energy Systems, Solar Energy, Vol. 81, No. 9, pp. 1117-1131, 2007. https://doi.org/10.1016/j.solener.2007.04.002
  9. Hussain, F., Othman, M. Y., Sopian, K., Yatim, B., Ruslan, H., and Othman, H., Design Development and Performance Evaluation of Photovoltaic/thermal(PVT) Air Base Solar Collector, Renewable and Sustainable Energy Review, Vol. 25, No. 9, pp. 431-441, 2013. https://doi.org/10.1016/j.rser.2013.04.014
  10. Ali, H. A., Al, W., Sopian, K., Hussein, A. K., and Miqdam, T. C., Photovoltaic/Thermal (PV/T) Systems: Status and future prospects, Renewable and Sustainable Energy Reviews, Vol. 77, No. 9, pp. 109-130, 2017. https://doi.org/10.1016/j.rser.2017.03.126
  11. Sohail, R. R., Mohamad, A. E., and Lin, C. X., A Review of PV-T Systems: Thermal Management and Efficiency with Single Phase Cooling, International Journal of Heat and Mass Transfer, Vol. 91, No. 12, pp. 861-871, 2015. https://doi.org/10.1016/j.ijheatmasstransfer.2015.07.134
  12. Tsai, H. L., Modeling and Validation of Refrigerant-based PVT-assisted Heat Pump Water Heating (PVTA-HPWH) System, Solar Energy, Vol. 122, No. 12, pp. 36-47, 2015. https://doi.org/10.1016/j.solener.2015.08.024
  13. Fine, J. P., Friedman, J., and Dworkin, S. B., Detailed Modeling of a Novel Photovoltaic Thermal Cascade Heat Pump Domestic Water Heating System, Renewable Energy, Vol. 101, No. 2, pp. 500-513, 2017. https://doi.org/10.1016/j.renene.2016.08.063
  14. Giuseppe, E., Angelo, Z., and Michele, D.C., A Heat Pump Coupled with Photovoltaic Thermal Hybrid Solar Collectors: A Case Study of a Multi-source Energy System, Energy Conversion and Management, Vol. 151, No. 11, pp. 386-399. 2017. https://doi.org/10.1016/j.enconman.2017.08.077
  15. Mahmut, S. B., Blaise, M., and Saffa, B. R., Experiment Investigation of a Building Integrated Photovoltaic/thermal Roof Collector Combined with a Liquid Desiccant Enhanced Indirect Evaporative Cooling System, Energy Conversion and Management, Vol. 101, No. 12, pp. 239-254, 2015. https://doi.org/10.1016/j.enconman.2015.05.026
  16. Mahmut, S. B. and Saffa, B. R., Performance Analysis of a Combined Building Integrated PV/T Collector with a Liquid Desiccant Enhanced Dew Point Cooler, Energy Procedia, Vol. 91, No. 6, pp. 717-727, 2016. https://doi.org/10.1016/j.egypro.2016.06.235
  17. Mohammad, S. and Mohamed, G., Performance Assessment of Integrated PV/T and Solid Desiccant Air-conditioning Systems for Cooling Buildings Using Maisotsenko Cooling Cycle, Solar Energy, Vol. 127, No. 4, pp. 79-95, 2016. https://doi.org/10.1016/j.solener.2015.12.048
  18. Ebru, K. A. and Faith, K., Experimental Investigation of Thermal Performance of Solar Air Heater Having Different Obstacles on Absorber Plates, International Communications in Heat and Mass Transfer, Vol. 37, No. 4, pp. 416-421, 2010. https://doi.org/10.1016/j.icheatmasstransfer.2009.11.007
  19. Deniz, A., Emin, B., Ertekin, C., and Osman, Y., Experimental Investigation of Three Different Solar Air Heaters: Energy and Exergy Analyses, Applied Energy, Vol. 87, No. 10, pp. 2953-2973, 2010. https://doi.org/10.1016/j.apenergy.2010.04.016
  20. Alam, T., Saini, R. P., and Saini, J. S., Experimental Investigation on Heat Transfer Enhancement Due to V-shaped Perforated Blocks in a Rectangular Duct of Solar Air Heater, Energy Conversion and Management, Vol. 81, No. 5, pp. 374-383, 2014. https://doi.org/10.1016/j.enconman.2014.02.044
  21. Yunus, A. C. and Afshin, J. G., Heat and Mass Transfer Fundamentals and Applications, Fourth Edition, Singapore: McGrawHill, pp. 473-474, 2013.
  22. Webb, R. L. and Gee, D. L., Forced Convection Heat Transfer in Helically rib-roughened Tubes, International Journal of Heat and Mass Transfer, Vol. 23, No. 8, pp. 1127-1136, 1980. https://doi.org/10.1016/0017-9310(80)90177-5

피인용 문헌

  1. Effect of Triangular Baffle Arrangement on Heat Transfer Enhancement of Air-Type PVT Collector vol.12, pp.18, 2020, https://doi.org/10.3390/su12187469