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Computational performance analysis of a solar chimney using surface modifications of the absorber plate

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  • Sengupta, Ayan
  • Mishra, Dipti Prasad
  • Sarangi, Shailesh Kumar

Abstract

Solar chimney technology has received considerable attention in recent years as it offers suitable thermal comfort at the desired space and involves no running cost and harmful emissions. The heat transfer and ventilation performance of the solar chimney greatly depend on the configuration of the absorber plate. Thus, the present paper numerically investigates the effect of variations in geometrical configurations of the wavy absorber plate such as the number of waves, wave amplitude, inclination angle of the chimney, inclination angle of the glass plate, and air gap. The numerical analysis suggested optimum number of waves to be 10 (Nu = 210), optimum inclination of the chimney to be 55° (Nu = 220), and optimum wave amplitude to be 6.25 cm (Nu = 232). However, no optimum values were obtained for variations in glass plate inclination and the air gap. The inverted T plate surface geometry (Nu = 252–257) delivered the highest enhancement in heat transfer performance relative to other surface geometries. Correlations have been developed for the performance parameters by performing several numerical experiments and the proposed mass flow rate correlation predicts 91.3% of the data within ±7%, whereas, the Nusselt number correlation predicts 93.47% of the data within ±7%.

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  • Sengupta, Ayan & Mishra, Dipti Prasad & Sarangi, Shailesh Kumar, 2022. "Computational performance analysis of a solar chimney using surface modifications of the absorber plate," Renewable Energy, Elsevier, vol. 185(C), pages 1095-1109.
  • Handle: RePEc:eee:renene:v:185:y:2022:i:c:p:1095-1109
    DOI: 10.1016/j.renene.2021.12.089
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    References listed on IDEAS

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    1. Wei, Du & Qirong, Yang & Jincui, Zhang, 2011. "A study of the ventilation performance of a series of connected solar chimneys integrated with building," Renewable Energy, Elsevier, vol. 36(1), pages 265-271.
    2. AboulNaga, M.M & Abdrabboh, S.N, 2000. "Improving night ventilation into low-rise buildings in hot-arid climates exploring a combined wall–roof solar chimney," Renewable Energy, Elsevier, vol. 19(1), pages 47-54.
    3. Abdulmajeed Mohamad & Jan Taler & Paweł Ocłoń, 2019. "Trombe Wall Utilization for Cold and Hot Climate Conditions," Energies, MDPI, vol. 12(2), pages 1-18, January.
    4. Sandberg, M. & Moshfegh, B., 1996. "Investigation of fluid flow and heat transfer in a vertical channel heated from one side by PV elements, part II - Experimental study," Renewable Energy, Elsevier, vol. 8(1), pages 254-258.
    5. Miyazaki, T. & Akisawa, A. & Kashiwagi, T., 2006. "The effects of solar chimneys on thermal load mitigation of office buildings under the Japanese climate," Renewable Energy, Elsevier, vol. 31(7), pages 987-1010.
    6. 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.
    7. Harris, D.J. & Helwig, N., 2007. "Solar chimney and building ventilation," Applied Energy, Elsevier, vol. 84(2), pages 135-146, February.
    8. Aboulnaga, Mohsen M., 1998. "A roof solar chimney assisted by cooling cavity for natural ventilation in buildings in hot arid climates: An energy conservation approach in Al-Ain city," Renewable Energy, Elsevier, vol. 14(1), pages 357-363.
    9. Moshfegh, B. & Sandberg, M., 1996. "Investigation of fluid flow and heat transfer in a vertical channel heated from one side by PV elements, part I - Numerical Study," Renewable Energy, Elsevier, vol. 8(1), pages 248-253.
    10. Khosravi, Mohsen & Fazelpour, Farivar & Rosen, Marc A., 2019. "Improved application of a solar chimney concept in a two-story building: An enhanced geometry through a numerical approach," Renewable Energy, Elsevier, vol. 143(C), pages 569-585.
    11. 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.
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