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Experiment and Simulation Study on Silicon Oil Immersion Cooling Densely-Packed Solar Cells Under High Concentration Ratio

Received: 16 May 2016    Accepted:     Published: 19 May 2016
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Abstract

In order to solve the heat dissipation problem of densely-packed solar cells in high concentration photovoltaic (HCPV) system, a new cooling method of using silicon oil directly immerse the solar cells was proposed. The heat transfer performance of silicon oil immersion cooling the densely-packed solar cells with and without fin structure was investigated through experiment and simulation methods. The results of heat transfer performance of solar cells without fin structure showed that the simulated data was consistent well with data of experiment and the temperature could be lowered down in the operation range of solar cell. Furthermore, the heat transfer performance of solar cells with fin structure was researched using the model under different silicon oil inlet temperatures, inlet flow rates and the flow pressure drop was measured. The results indicated that the solar cells temperature declined and distributed well with silicon oil inlet flow rate increasing but the solar cells temperature raised linearly with silicon oil inlet temperature increasing. The optimized parameters of cooling receiver with fin structure were that: height of fin was 14 mm, number of fin was 50 and the thickness of substrate was 1.5 mm, with which the large amount of heat of densely-packed solar cells under high concentration ratio could be well controlled and make sure the power generation of HCPV system was high efficient.

Published in International Journal of Energy and Power Engineering (Volume 5, Issue 3)
DOI 10.11648/j.ijepe.20160503.11
Page(s) 90-96
Creative Commons

This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited.

Copyright

Copyright © The Author(s), 2024. Published by Science Publishing Group

Keywords

High Concentration Ratio, Densely-Packed Solar Cells, Silicon Oil, Immersion Cooling, Fin Structure

References
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[3] Geng wg, Gao L, Shao M, Li Xy, “Numerical and experimental study on cooling high-concentration photovoltaic cells with oscillating heat pipe,” International Journal of Low-Carbon Technologies, 7, pp. 168-173 (2012).
[4] Reeser A, Wang P, Hetsroni G, Bar-Cohen A, “Energy Efficient Two-Phase Microcooler Design for a Concentrated Photovoltaic Triple Junction Cell,” Journal of Solar Energy Engineering, 136, (2014).
[5] Barrau J, Perona A, Dollet A, Rosell J, “Outdoor test of a hybrid jet impingement/micro-channel cooling device for densely packed concentrated photovoltaic cells,” Solar Energy, 107, pp. 113-121 (2014).
[6] Wang Y, Fang Z, Zhu L, Huang Q, Zhang Y, Zhang Z, “The performance of silicon solar cells operated in liquids,” Applied Energy, 86, pp. 1037-1042 (2009).
[7] Han X, Wang Y, Zhu L, “The performance and long-term stability of silicon concentrator solar cells immersed in dielectric liquids,” Energy Conversion and Management, 66, pp. 189-198 (2013).
[8] Han X, Wang Y, Zhu L, Xiang H, Zhang H, “Reliability assessment of silicone coated silicon concentrator solar cells by accelerated aging tests for immersing in de-ionized water,” Solar Energy, 85, pp. 2781-2788 (2011).
[9] Han X, Wang Y, Zhu L, Xiang H, Zhang H, “Mechanism study of the electrical performance change of silicon concentrator solar cells immersed in de-ionized water,” Energy Conversion and Management, 53, pp. 1-10 (2012).
[10] Liu L, Zhu L, Wang Y, Huang Q, Sun Y, Yin Z, “Heat dissipation performance of silicon solar cells by direct dielectric liquid immersion under intensified illuminations,” Solar Energy, 85, pp. 922-930 (2011).
[11] Sun Y, Wang Y, Zhu L, Yin B, Xiang H, Huang Q, “Direct liquid-immersion cooling of concentrator silicon solar cells in a linear concentrating photovoltaic receiver,” Energy, 65, pp. 264-271 (2014).
[12] Xiang H, Wang Y, Zhu L, Han X, Sun Y, Zhao Z, “3D numerical simulation on heat transfer performance of a cylindrical liquid immersion solar receiver,” Energy Conversion and Management, 64, pp. 97-105 (2012).
[13] Xin G, Wang Y, Sun Y, Huang Q, Zhu L, “Experimental study of liquid-immersion III–V multi-junction solar cells with dimethyl silicon oil under high concentrations,” Energy Conversion and Management, 94, pp. 169-177 (2015).
[14] Zhu L, Boehm RF, Wang Y, Halford C, Sun Y, “Water immersion cooling of PV cells in a high concentration system,” Solar Energy Materials and Solar Cells, 95, pp. 538-545 (2011).
[15] Zhu L, Wang Y, Fang Z, Sun Y, Huang Q, “An effective heat dissipation method for densely packed solar cells under high concentrations,” Solar Energy Materials and Solar Cells, 94, pp. 133-140 (2010).
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[17] Tianjin Lantian Solar Technology Limited Company, www.tjsolartech.com.
Cite This Article
  • APA Style

    Xue Kang, Yiping Wang, Ganchao Xin, Xusheng Shi. (2016). Experiment and Simulation Study on Silicon Oil Immersion Cooling Densely-Packed Solar Cells Under High Concentration Ratio. International Journal of Energy and Power Engineering, 5(3), 90-96. https://doi.org/10.11648/j.ijepe.20160503.11

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    ACS Style

    Xue Kang; Yiping Wang; Ganchao Xin; Xusheng Shi. Experiment and Simulation Study on Silicon Oil Immersion Cooling Densely-Packed Solar Cells Under High Concentration Ratio. Int. J. Energy Power Eng. 2016, 5(3), 90-96. doi: 10.11648/j.ijepe.20160503.11

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    AMA Style

    Xue Kang, Yiping Wang, Ganchao Xin, Xusheng Shi. Experiment and Simulation Study on Silicon Oil Immersion Cooling Densely-Packed Solar Cells Under High Concentration Ratio. Int J Energy Power Eng. 2016;5(3):90-96. doi: 10.11648/j.ijepe.20160503.11

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  • @article{10.11648/j.ijepe.20160503.11,
      author = {Xue Kang and Yiping Wang and Ganchao Xin and Xusheng Shi},
      title = {Experiment and Simulation Study on Silicon Oil Immersion Cooling Densely-Packed Solar Cells Under High Concentration Ratio},
      journal = {International Journal of Energy and Power Engineering},
      volume = {5},
      number = {3},
      pages = {90-96},
      doi = {10.11648/j.ijepe.20160503.11},
      url = {https://doi.org/10.11648/j.ijepe.20160503.11},
      eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ijepe.20160503.11},
      abstract = {In order to solve the heat dissipation problem of densely-packed solar cells in high concentration photovoltaic (HCPV) system, a new cooling method of using silicon oil directly immerse the solar cells was proposed. The heat transfer performance of silicon oil immersion cooling the densely-packed solar cells with and without fin structure was investigated through experiment and simulation methods. The results of heat transfer performance of solar cells without fin structure showed that the simulated data was consistent well with data of experiment and the temperature could be lowered down in the operation range of solar cell. Furthermore, the heat transfer performance of solar cells with fin structure was researched using the model under different silicon oil inlet temperatures, inlet flow rates and the flow pressure drop was measured. The results indicated that the solar cells temperature declined and distributed well with silicon oil inlet flow rate increasing but the solar cells temperature raised linearly with silicon oil inlet temperature increasing. The optimized parameters of cooling receiver with fin structure were that: height of fin was 14 mm, number of fin was 50 and the thickness of substrate was 1.5 mm, with which the large amount of heat of densely-packed solar cells under high concentration ratio could be well controlled and make sure the power generation of HCPV system was high efficient.},
     year = {2016}
    }
    

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  • TY  - JOUR
    T1  - Experiment and Simulation Study on Silicon Oil Immersion Cooling Densely-Packed Solar Cells Under High Concentration Ratio
    AU  - Xue Kang
    AU  - Yiping Wang
    AU  - Ganchao Xin
    AU  - Xusheng Shi
    Y1  - 2016/05/19
    PY  - 2016
    N1  - https://doi.org/10.11648/j.ijepe.20160503.11
    DO  - 10.11648/j.ijepe.20160503.11
    T2  - International Journal of Energy and Power Engineering
    JF  - International Journal of Energy and Power Engineering
    JO  - International Journal of Energy and Power Engineering
    SP  - 90
    EP  - 96
    PB  - Science Publishing Group
    SN  - 2326-960X
    UR  - https://doi.org/10.11648/j.ijepe.20160503.11
    AB  - In order to solve the heat dissipation problem of densely-packed solar cells in high concentration photovoltaic (HCPV) system, a new cooling method of using silicon oil directly immerse the solar cells was proposed. The heat transfer performance of silicon oil immersion cooling the densely-packed solar cells with and without fin structure was investigated through experiment and simulation methods. The results of heat transfer performance of solar cells without fin structure showed that the simulated data was consistent well with data of experiment and the temperature could be lowered down in the operation range of solar cell. Furthermore, the heat transfer performance of solar cells with fin structure was researched using the model under different silicon oil inlet temperatures, inlet flow rates and the flow pressure drop was measured. The results indicated that the solar cells temperature declined and distributed well with silicon oil inlet flow rate increasing but the solar cells temperature raised linearly with silicon oil inlet temperature increasing. The optimized parameters of cooling receiver with fin structure were that: height of fin was 14 mm, number of fin was 50 and the thickness of substrate was 1.5 mm, with which the large amount of heat of densely-packed solar cells under high concentration ratio could be well controlled and make sure the power generation of HCPV system was high efficient.
    VL  - 5
    IS  - 3
    ER  - 

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Author Information
  • School of Chemical Engineering and Technology, Tianjin University, Tianjin, China

  • School of Chemical Engineering and Technology, Tianjin University, Tianjin, China

  • Toppley (Zhuhai) Chemicals. Co., LTD. Guangdong, China

  • School of Chemical Engineering and Technology, Tianjin University, Tianjin, China

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