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Concrete solar collectors for façade integration: An experimental and numerical investigation

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  • O'Hegarty, Richard
  • Kinnane, Oliver
  • McCormack, Sarah J.

Abstract

Precast concrete cladding systems can be converted into concrete solar collectors by embedding pipes within the exposed concrete, providing a unique building integrated solar thermal solution. Past research of non-integrated, roof-attached concrete solar collectors have largely focused on experimental studies in high temperature climates and/or simulation studies using simplified 1D and 2D models. This study (1) Experimentally investigates the performance of a façade integrated concrete solar collector in a mid-latitude European climate (Dublin) and (2) Develops and validates a 3D numerical model which is then used to predict the performance of other façade integrated concrete solar collectors in other European climates. The study primarily quantifies the performance in relation to the energy output and the solar fraction. The experimental set-up of the concrete solar collector is designed to represent a south facing façade installation. The experimental results showed that one quarter of the annual hot water demand of a single occupant dwelling could be provided using 1m2 of concrete solar collectors with spring and autumn months producing the highest daily energy outputs; attributed to the vertical orientation of the concrete solar collectors. A 3D numerical model of the vertically installed concrete solar collector is developed in COMSOL Multiphysics and validated against the experimentally measured results. The validated model is used to expand the study to different collectors and systems, as well as two additional contrasting Northern and Southern European climates where precast concrete is a popular cladding material, namely Helsinki and Sofia. The simulation results showed that the solar absorptance, flow rate, collector area and pipe length have a significant influence on the performance of the concrete solar collector system. Annual solar fractions of 20% (Helsinki), 24% (Dublin) and 30% (Sofia) are predicted for a small apartment building using a façade integrated concrete solar collector. The concrete solar collectors presented a negligible influence on the interior environment provided sufficient insulation is located at the back of the concrete absorber, as would be typical of a precast concrete sandwich panel construction.

Suggested Citation

  • O'Hegarty, Richard & Kinnane, Oliver & McCormack, Sarah J., 2017. "Concrete solar collectors for façade integration: An experimental and numerical investigation," Applied Energy, Elsevier, vol. 206(C), pages 1040-1061.
  • Handle: RePEc:eee:appene:v:206:y:2017:i:c:p:1040-1061
    DOI: 10.1016/j.apenergy.2017.08.239
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    References listed on IDEAS

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    8. Nasir, Diana S.N.M. & Hughes, Ben Richard & Calautit, John Kaiser, 2015. "A study of the impact of building geometry on the thermal performance of road pavement solar collectors," Energy, Elsevier, vol. 93(P2), pages 2614-2630.
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    11. Nasir, Diana S.N.M. & Hughes, Ben Richard & Calautit, John Kaiser, 2017. "A CFD analysis of several design parameters of a road pavement solar collector (RPSC) for urban application," Applied Energy, Elsevier, vol. 186(P3), pages 436-449.
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    Cited by:

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    2. Samiya Aamir Al-Mabsali & Hassam Nasarullah Chaudhry & Mehreen Saleem Gul, 2019. "Numerical Investigation on Heat Pipe Spanwise Spacing to Determine Optimum Configuration for Passive Cooling of Photovoltaic Panels," Energies, MDPI, vol. 12(24), pages 1-14, December.
    3. Elguezabal, P. & Lopez, A. & Blanco, J.M. & Chica, J.A., 2020. "CFD model-based analysis and experimental assessment of key design parameters for an integrated unglazed metallic thermal collector façade," Renewable Energy, Elsevier, vol. 146(C), pages 1766-1780.
    4. Farzan, Hadi & Zaim, Ehsan Hasan & Ameri, Mehran & Amiri, Tayebeh, 2021. "Study on effects of wind velocity on thermal efficiency and heat dynamics of pavement solar collectors: An experimental and numerical study," Renewable Energy, Elsevier, vol. 163(C), pages 1718-1728.
    5. Lee, Louis S.H. & Jim, C.Y., 2019. "Energy benefits of green-wall shading based on novel-accurate apportionment of short-wave radiation components," Applied Energy, Elsevier, vol. 238(C), pages 1506-1518.
    6. Alessia Aquilanti & Ignacio Peralta & Eduardus A. B. Koenders & Giovanni Di Nicola, 2023. "A Brief Review of the Latest Advancements of Massive Solar Thermal Collectors," Energies, MDPI, vol. 16(16), pages 1-19, August.
    7. Kareem, M.W. & Habib, Khairul & Pasha, Amjad A. & Irshad, Kashif & Afolabi, L.O. & Saha, Bidyut Baran, 2022. "Experimental study of multi-pass solar air thermal collector system assisted with sensible energy-storing matrix," Energy, Elsevier, vol. 245(C).

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