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Study of the Radiation Flux Distribution in a Parabolic Dish Concentrator

Author

Listed:
  • Nidia Aracely Cisneros-Cárdenas

    (Chemical Engineering Department, Universidad de Sonora, Hermosillo 83000, Mexico)

  • Rafael Cabanillas-López

    (Chemical Engineering Department, Universidad de Sonora, Hermosillo 83000, Mexico)

  • Ricardo Pérez-Enciso

    (Industrial Engineering Department, Universidad de Sonora, Hermosillo 83000, Mexico)

  • Guillermo Martínez-Rodríguez

    (Chemical Engineering Department, Universidad de Guanajuato, Guanajuato 36050, Mexico)

  • Rafael García-Gutiérrez

    (Physics Research Department, Universidad de Sonora, Hermosillo 83000, Mexico)

  • Carlos Pérez-Rábago

    (Instituto de Energías Renovables, Universidad Nacional Autónoma de México, Temixco 62580, Mexico)

  • Ramiro Calleja-Valdez

    (Chemical Engineering Department, Universidad de Sonora, Hermosillo 83000, Mexico)

  • David Riveros-Rosas

    (Geophysics Institute, Universidad Nacional Autónoma de México, Ciudad de Mexico 04150, Mexico)

Abstract

The radiation flux distributions produced by the concentrating solar systems used to produce thermal/electrical power are usually non-homogeneous. This results in non-uniform temperature distributions on the solar receivers, causing adverse effects on the system’s overall performance. An approach to better understand the problem is to study the surfaces around the focal zone where the radiation density is homogeneous (isosurfaces), generating them from experimental data. For this, it is necessary to superimpose built volumes of the different irradiance levels using parallel planes in different directions from the focal point of a concentrator. These volumes are known as effective volumes. This study presents the model used to generate effective volume produced by a point focus concentrator, comparing it with experimental results in a direction perpendicular to the focal axis. The effective volumes were developed considering a global optical error of the system of 2.8 mrad. The set of methods used to generate effective volumes has not been previously presented in the literature. The theoretical-experimental research consisted of the combination of the camera-target method and the simulations by the ray-tracing technique. The results showed effective volumes with the highest value of 10 MW/m 2 and the lowest value of 4.5 MW/m 2 .

Suggested Citation

  • Nidia Aracely Cisneros-Cárdenas & Rafael Cabanillas-López & Ricardo Pérez-Enciso & Guillermo Martínez-Rodríguez & Rafael García-Gutiérrez & Carlos Pérez-Rábago & Ramiro Calleja-Valdez & David Riveros-, 2021. "Study of the Radiation Flux Distribution in a Parabolic Dish Concentrator," Energies, MDPI, vol. 14(21), pages 1-15, October.
  • Handle: RePEc:gam:jeners:v:14:y:2021:i:21:p:7053-:d:666889
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    References listed on IDEAS

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    1. Du, Shen & Li, Ming-Jia & Ren, Qinlong & Liang, Qi & He, Ya-Ling, 2017. "Pore-scale numerical simulation of fully coupled heat transfer process in porous volumetric solar receiver," Energy, Elsevier, vol. 140(P1), pages 1267-1275.
    2. Jaramillo, O.A. & Pérez-Rábago, C.A. & Arancibia-Bulnes, C.A. & Estrada, C.A., 2008. "A flat-plate calorimeter for concentrated solar flux evaluation," Renewable Energy, Elsevier, vol. 33(10), pages 2322-2328.
    3. Maria Simona Răboacă & Gheorghe Badea & Adrian Enache & Constantin Filote & Gabriel Răsoi & Mihai Rata & Alexandru Lavric & Raluca-Andreea Felseghi, 2019. "Concentrating Solar Power Technologies," Energies, MDPI, vol. 12(6), pages 1-17, March.
    4. Ali, Mahmoud & Rady, Mohamed & Attia, Mohamed A.A. & Ewais, Emad M.M., 2020. "Consistent coupled optical and thermal analysis of volumetric solar receivers with honeycomb absorbers," Renewable Energy, Elsevier, vol. 145(C), pages 1849-1861.
    5. Perez-Enciso, Ricardo & Gallo, Alessandro & Riveros-Rosas, David & Fuentealba-Vidal, Edward & Perez-Rábago, Carlos, 2016. "A simple method to achieve a uniform flux distribution in a multi-faceted point focus concentrator," Renewable Energy, Elsevier, vol. 93(C), pages 115-124.
    6. Barreto, Germilly & Canhoto, Paulo & Collares-Pereira, Manuel, 2018. "Three-dimensional modelling and analysis of solar radiation absorption in porous volumetric receivers," Applied Energy, Elsevier, vol. 215(C), pages 602-614.
    7. Wang, Gang & Wang, Fasi & Shen, Fan & Jiang, Tieliu & Chen, Zeshao & Hu, Peng, 2020. "Experimental and optical performances of a solar CPV device using a linear Fresnel reflector concentrator," Renewable Energy, Elsevier, vol. 146(C), pages 2351-2361.
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