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Experimental evaluation of photovoltaic DC refrigerator under different thermostat settings

Author

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  • Daffallah, K.O.
  • Benghanem, M.
  • Alamri, S.N.
  • Joraid, A.A.
  • Al-Mashraqi, A.A.

Abstract

In the present study, an experimental evaluation of photovoltaic DC refrigerator with and without loading is carried out under different conditions. The experimental setup consists of photovoltaic (PV) panel, 12 V battery, charge controller and 158 L DC refrigerator. The refrigerator run with a 12 V DC compressor and incorporated with an AC/DC converter as a backup source. The temperature inside the refrigerator is adjusted through a thermostat. The effects of the variations of thermostat setting on the performance of the refrigerator were investigated. The daily ampere hour (Ah) generated from the photovoltaic panel is compared with daily ampere hour (Ah) consumed by the refrigerator for different configurations. Experimental results show that the refrigerator consumed less ampere hour (Ah) when the thermostat at lower position. However, it was found that the maximum consumption is recorded when the thermostat at higher position. More detailed test were conducted for the operation of the refrigerator without photovoltaic panel (battery only) and with AC/DC converter. The power consumption of the refrigerator with different loadings were also recorded and compared with power consumption without loading condition. It was observed that the thermostat setting position has a great effect on the energy consumption of the refrigerator.

Suggested Citation

  • Daffallah, K.O. & Benghanem, M. & Alamri, S.N. & Joraid, A.A. & Al-Mashraqi, A.A., 2017. "Experimental evaluation of photovoltaic DC refrigerator under different thermostat settings," Renewable Energy, Elsevier, vol. 113(C), pages 1150-1159.
  • Handle: RePEc:eee:renene:v:113:y:2017:i:c:p:1150-1159
    DOI: 10.1016/j.renene.2017.05.099
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    References listed on IDEAS

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    1. El Tom, O.M.M. & Omer, S.A. & Taha, A.Z. & Sayigh, A.A.M., 1991. "Performance of a photovoltaic solar refrigerator in tropical climate conditions," Renewable Energy, Elsevier, vol. 1(2), pages 199-205.
    2. Derrick, A., 1994. "Solar photovoltaics for development: Progress and prospects," Renewable Energy, Elsevier, vol. 5(1), pages 229-236.
    3. Cherif, Adnene & Dhouib, Ahmed, 2002. "Dynamic modelling and simulation of a photovoltaic refrigeration plant," Renewable Energy, Elsevier, vol. 26(1), pages 143-153.
    4. Toure, Siaka & Fassinou, Wanignon Ferdinand, 1999. "Technical note Cold storage and autonomy in a three compartments photovoltaic solar refrigerator: experimental and thermodynamic study," Renewable Energy, Elsevier, vol. 17(4), pages 587-602.
    5. Langevine, LP, 1997. "A diagnostic study of photovoltaic systems at rural health centres in Guyana," Renewable Energy, Elsevier, vol. 10(2), pages 153-156.
    6. Papadopoulos, A. M. & Oxizidis, S. & Kyriakis, N., 2003. "Perspectives of solar cooling in view of the developments in the air-conditioning sector," Renewable and Sustainable Energy Reviews, Elsevier, vol. 7(5), pages 419-438, October.
    7. Kaplanis, Socrates & Papanastasiou, Nikolaos, 2006. "The study and performance of a modified conventional refrigerator to serve as a PV powered one," Renewable Energy, Elsevier, vol. 31(6), pages 771-780.
    8. Salah El-Din, M.M, 2000. "On the optimization of solar-driven refrigerators," Renewable Energy, Elsevier, vol. 20(1), pages 87-93.
    9. Enibe, S.O., 1997. "Solar refrigeration for rural applications," Renewable Energy, Elsevier, vol. 12(2), pages 157-167.
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