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Experimental study on thermal performances of a solar chimney with and without PCM under different system inclination angles

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  • Huang, Sheng
  • Li, Wuyan
  • Lu, Jun
  • Li, Yongcai
  • Wang, Zhihao
  • Zhu, Shaohui

Abstract

The thermal performance of a solar chimney was experimentally investigated to explore its effectiveness with and without phase change material (PCM) at different inclination angles (30°, 45°, and 60°). The temperature distributions of the PCM and absorbing surface and the temperature and velocity of the induced air during the entire charging and discharging process were measured and analysed. The experimental results indicated that the effect of the inclination angle on the convective heat transfer inside the PCM cannot be ignored. Compared to the 60° case, the melting times of the PCM in the 45° and 30° cases were prolonged by 3.3 % and 13.3 %, respectively, whereas the 45° case had the shortest solidification time. An inclination angle of 45° was found to be the optimal inclination, under which the solar chimney with and without the PCM reached a maximum air velocity of 0.37 and 0.4 m/s. The solar chimney integrated with PCM provided a longer ventilation duration of more than 10 h after the heat source was withdrawn. The comparative results of the chimney performance under different heat fluxes showed that the solar chimney with the PCM could work effectively even when the heat flux was as low as 200 W/m2 during the diurnal cycle operation.

Suggested Citation

  • Huang, Sheng & Li, Wuyan & Lu, Jun & Li, Yongcai & Wang, Zhihao & Zhu, Shaohui, 2024. "Experimental study on thermal performances of a solar chimney with and without PCM under different system inclination angles," Energy, Elsevier, vol. 290(C).
  • Handle: RePEc:eee:energy:v:290:y:2024:i:c:s036054422303548x
    DOI: 10.1016/j.energy.2023.130154
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    References listed on IDEAS

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    1. Liu, Shuli & Li, Yongcai, 2015. "An experimental study on the thermal performance of a solar chimney without and with PCM," Renewable Energy, Elsevier, vol. 81(C), pages 338-346.
    2. Li, Yongcai & Liu, Shuli, 2014. "Experimental study on thermal performance of a solar chimney combined with PCM," Applied Energy, Elsevier, vol. 114(C), pages 172-178.
    3. Zeinelabdein, Rami & Omer, Siddig & Gan, Guohui, 2018. "Critical review of latent heat storage systems for free cooling in buildings," Renewable and Sustainable Energy Reviews, Elsevier, vol. 82(P3), pages 2843-2868.
    4. Hirunlabh, J & Kongduang, W & Namprakai, P & Khedari, J, 1999. "Study of natural ventilation of houses by a metallic solar wall under tropical climate," Renewable Energy, Elsevier, vol. 18(1), pages 109-119.
    5. Harris, D.J. & Helwig, N., 2007. "Solar chimney and building ventilation," Applied Energy, Elsevier, vol. 84(2), pages 135-146, February.
    6. Amer, Emad H., 2006. "Passive options for solar cooling of buildings in arid areas," Energy, Elsevier, vol. 31(8), pages 1332-1344.
    7. Huang, Sheng & Lu, Jun & Li, Yongcai, 2022. "Numerical study on the influence of inclination angle on the melting behaviour of metal foam-PCM latent heat storage units," Energy, Elsevier, vol. 239(PE).
    8. Lee, Duen-Sheng & Hung, Tzu-Chen & Lin, Jaw-Ren & Zhao, Jun, 2015. "Experimental investigations on solar chimney for optimal heat collection to be utilized in organic Rankine cycle," Applied Energy, Elsevier, vol. 154(C), pages 651-662.
    9. Ong, K.S., 2003. "A mathematical model of a solar chimney," Renewable Energy, Elsevier, vol. 28(7), pages 1047-1060.
    10. Berardi, Umberto, 2017. "A cross-country comparison of the building energy consumptions and their trends," Resources, Conservation & Recycling, Elsevier, vol. 123(C), pages 230-241.
    11. Monghasemi, Nima & Vadiee, Amir, 2018. "A review of solar chimney integrated systems for space heating and cooling application," Renewable and Sustainable Energy Reviews, Elsevier, vol. 81(P2), pages 2714-2730.
    12. Zhai, X.Q. & Song, Z.P. & Wang, R.Z., 2011. "A review for the applications of solar chimneys in buildings," Renewable and Sustainable Energy Reviews, Elsevier, vol. 15(8), pages 3757-3767.
    13. Imran, Ahmed Abdulnabi & Jalil, Jalal M. & Ahmed, Sabah T., 2015. "Induced flow for ventilation and cooling by a solar chimney," Renewable Energy, Elsevier, vol. 78(C), pages 236-244.
    Full references (including those not matched with items on IDEAS)

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