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New approach for analysing the effect of minor and major solar cooker design changes: Influence of height trivet on the power of a funnel cooker

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  • Apaolaza-Pagoaga, Xabier
  • Carrillo-Andrés, Antonio
  • Ruivo, Celestino Rodrigues

Abstract

In present work, the power values of two funnel cookers were determined by following the standard ASAE S580.1 procedure and also a novel improved approach for better analysing the effect of minor design changes. This new approach is based on experimental side by side tests of the two cookers and it adopts a shorter time interval and a curve fitting based on the LOESS adjustment is adopted for the evaluation of the difference in power values of the different designs tested. The two funnel cookers were tested experimentally with a load ratio of 4 kg m−2. The influence of the height of a trivet, from 0 to 100 mm, on the cooker power was evaluated. The estimated changes in power values due to the design changes were low but not negligible. As example, the power standardised increases 6 W when a height trivet of 25 mm is used respecting cooking operation without trivet. The novel approach is promising because it enables to determine the impact of minor design changes on the power of the cooker. The same analysis is not possible to be performed with the standard ASAE S580.1 procedure due to the uncontrollability of the weather conditions.

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  • Apaolaza-Pagoaga, Xabier & Carrillo-Andrés, Antonio & Ruivo, Celestino Rodrigues, 2021. "New approach for analysing the effect of minor and major solar cooker design changes: Influence of height trivet on the power of a funnel cooker," Renewable Energy, Elsevier, vol. 179(C), pages 2071-2085.
  • Handle: RePEc:eee:renene:v:179:y:2021:i:c:p:2071-2085
    DOI: 10.1016/j.renene.2021.08.025
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    References listed on IDEAS

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    1. Al-Soud, Mohammed S. & Abdallah, Essam & Akayleh, Ali & Abdallah, Salah & Hrayshat, Eyad S., 2010. "A parabolic solar cooker with automatic two axes sun tracking system," Applied Energy, Elsevier, vol. 87(2), pages 463-470, February.
    2. Cuce, Erdem & Cuce, Pinar Mert, 2013. "A comprehensive review on solar cookers," Applied Energy, Elsevier, vol. 102(C), pages 1399-1421.
    3. Vengadesan, Elumalai & Senthil, Ramalingam, 2021. "Experimental investigation of the thermal performance of a box type solar cooker using a finned cooking vessel," Renewable Energy, Elsevier, vol. 171(C), pages 431-446.
    4. Aramesh, Mohamad & Ghalebani, Mehdi & Kasaeian, Alibakhsh & Zamani, Hosein & Lorenzini, Giulio & Mahian, Omid & Wongwises, Somchai, 2019. "A review of recent advances in solar cooking technology," Renewable Energy, Elsevier, vol. 140(C), pages 419-435.
    5. Lahkar, Pranab J. & Bhamu, Rajesh K. & Samdarshi, S.K., 2012. "Enabling inter-cooker thermal performance comparison based on cooker opto-thermal ratio (COR)," Applied Energy, Elsevier, vol. 99(C), pages 491-495.
    6. Edmonds, Ian, 2018. "Low cost realisation of a high temperature solar cooker," Renewable Energy, Elsevier, vol. 121(C), pages 94-101.
    7. Panwar, N.L. & Kaushik, S.C. & Kothari, Surendra, 2012. "State of the art of solar cooking: An overview," Renewable and Sustainable Energy Reviews, Elsevier, vol. 16(6), pages 3776-3785.
    8. Saxena, Abhishek & Cuce, Erdem & Tiwari, G.N. & Kumar, Avnish, 2020. "Design and thermal performance investigation of a box cooker with flexible solar collector tubes: An experimental research," Energy, Elsevier, vol. 206(C).
    9. Ruivo, Celestino Rodrigues & Carrillo-Andrés, Antonio & Apaolaza-Pagoaga, Xabier, 2021. "Experimental determination of the standardised power of a solar funnel cooker for low sun elevations," Renewable Energy, Elsevier, vol. 170(C), pages 364-374.
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    Cited by:

    1. Ruivo, Celestino Rodrigues & Coccia, Gianluca & Di Nicola, Giovanni & Carrillo-Andrés, Antonio & Apaolaza-Pagoaga, Xabier, 2022. "Standardised power of solar cookers with a linear performance curve following the Hottel-Whillier-Bliss formulation," Renewable Energy, Elsevier, vol. 200(C), pages 1202-1210.
    2. Ruivo, Celestino Rodrigues & Apaolaza-Pagoaga, Xabier & Di Nicola, Giovanni & Carrillo-Andrés, Antonio, 2022. "On the use of experimental measured data to derive the linear regression usually adopted for determining the performance parameters of a solar cooker," Renewable Energy, Elsevier, vol. 181(C), pages 105-115.
    3. Ruivo, Celestino Rodrigues & Apaolaza-Pagoaga, Xabier & Coccia, Gianluca & Carrillo-Andrés, Antonio, 2022. "Proposal of a non-linear curve for reporting the performance of solar cookers," Renewable Energy, Elsevier, vol. 191(C), pages 110-121.
    4. Apaolaza-Pagoaga, Xabier & Carrillo-Andrés, Antonio & Ruivo, Celestino Rodrigues, 2022. "Experimental characterization of the thermal performance of the Haines 2 solar cooker," Energy, Elsevier, vol. 257(C).

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