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Numerical investigation of pitch value on thermal performance of solar receiver for solar powered Brayton cycle application

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  • Daabo, Ahmed M.
  • Mahmoud, Saad
  • Al-Dadah, Raya K.
  • Ahmad, Abdalqader

Abstract

Small scale open solar thermal Brayton cycle with Concentrated Solar Power (CSP) system can provide an efficient, clean, sustainable and low cost energy conversion system to produce different forms of energy such as electricity. The current paper investigates various configurations of open cavity solar receivers including cylindrical, conical and spherical with an aperture of 0.02835 m2 and average irradiance values of 2.5 kW/m2. Advanced ray tracing (OptisWorks®12), as this is the latest available version) and computational fluid dynamic (CFD, ANSYS® 15) simulations are used to reduce optical and thermal losses and maximize the exit temperature of the working fluid. The received irradiance on the external surface of the helical coils inside these receiver geometries was used to predict the heat transfer fluid temperature through CFD analysis. Investigations were carried out to discover the effects of coil pitch and tube diameter on the working fluid's exit temperature. The results showed that for a pitch value of 3 mm and a tube diameter of 10 mm, the exit temperature is 401.3 K, 405.7 K and 409.4 K for each of the spherical, cylindrical and conical geometries respectively; indicating that the conical shaped receiver is more efficient than the other geometries. Moreover, the best pitch value, when the higher outlet temperature was achieved, depends on both the tube diameter and the cavity configuration. The effect of some other factors such as the ambient temperature and the pressure losses on the receiver's performance have also been investigated in this study.

Suggested Citation

  • Daabo, Ahmed M. & Mahmoud, Saad & Al-Dadah, Raya K. & Ahmad, Abdalqader, 2017. "Numerical investigation of pitch value on thermal performance of solar receiver for solar powered Brayton cycle application," Energy, Elsevier, vol. 119(C), pages 523-539.
  • Handle: RePEc:eee:energy:v:119:y:2017:i:c:p:523-539
    DOI: 10.1016/j.energy.2016.12.085
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    References listed on IDEAS

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    1. Boyaghchi, Fateme Ahmadi & Chavoshi, Mansoure & Sabeti, Vajiheh, 2015. "Optimization of a novel combined cooling, heating and power cycle driven by geothermal and solar energies using the water/CuO (copper oxide) nanofluid," Energy, Elsevier, vol. 91(C), pages 685-699.
    2. Roldán, M.I. & Zarza, E. & Casas, J.L., 2015. "Modelling and testing of a solar-receiver system applied to high-temperature processes," Renewable Energy, Elsevier, vol. 76(C), pages 608-618.
    3. Nan Tu & Jinjia Wei & Jiabin Fang, 2013. "Experimental and Numerical Study on the Thermal Performance of a Water/Steam Cavity Receiver," Energies, MDPI, vol. 6(3), pages 1-19, February.
    4. Daabo, Ahmed M. & Mahmoud, Saad & Al-Dadah, Raya K., 2016. "The optical efficiency of three different geometries of a small scale cavity receiver for concentrated solar applications," Applied Energy, Elsevier, vol. 179(C), pages 1081-1096.
    5. Daabo, Ahmed M. & Mahmoud, Saad & Al-Dadah, Raya K., 2016. "The effect of receiver geometry on the optical performance of a small-scale solar cavity receiver for parabolic dish applications," Energy, Elsevier, vol. 114(C), pages 513-525.
    6. Abdullahi, B. & AL-Dadah, R.K. & Mahmoud, S. & Hood, R., 2015. "Optical and thermal performance of double receiver compound parabolic concentrator," Applied Energy, Elsevier, vol. 159(C), pages 1-10.
    7. Wei, Min & Fan, Yilin & Luo, Lingai & Flamant, Gilles, 2015. "Fluid flow distribution optimization for minimizing the peak temperature of a tubular solar receiver," Energy, Elsevier, vol. 91(C), pages 663-677.
    8. Ngo, L.C. & Bello-Ochende, T. & Meyer, J.P., 2015. "Numerical modelling and optimisation of natural convection heat loss suppression in a solar cavity receiver with plate fins," Renewable Energy, Elsevier, vol. 74(C), pages 95-105.
    9. Sellami, Nazmi & Mallick, Tapas K., 2013. "Optical efficiency study of PV Crossed Compound Parabolic Concentrator," Applied Energy, Elsevier, vol. 102(C), pages 868-876.
    10. Jansen, E. & Bello-Ochende, T. & Meyer, J.P., 2015. "Integrated solar thermal Brayton cycles with either one or two regenerative heat exchangers for maximum power output," Energy, Elsevier, vol. 86(C), pages 737-748.
    11. Loni, R. & Kasaeian, A.B. & Askari Asli-Ardeh, E. & Ghobadian, B., 2016. "Optimizing the efficiency of a solar receiver with tubular cylindrical cavity for a solar-powered organic Rankine cycle," Energy, Elsevier, vol. 112(C), pages 1259-1272.
    12. Liao, Zhirong & Li, Xin & Xu, Chao & Chang, Chun & Wang, Zhifeng, 2014. "Allowable flux density on a solar central receiver," Renewable Energy, Elsevier, vol. 62(C), pages 747-753.
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    2. Ndiogou, Baye A. & Thiam, Ababacar & Mbow, Cheikh & Stouffs, Pascal & Azilinon, Dorothé, 2019. "Numerical analysis and optimization of an indirectly irradiated solar receiver for a Brayton cycle," Energy, Elsevier, vol. 166(C), pages 519-529.
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    5. Wang, Ding & Chen, Yuxuan & Xiao, Hu & Zhang, Yanping, 2022. "Effects of geometric and operating parameters on thermal performance of conical cavity receivers using supercritical CO2 as heat transfer fluid," Renewable Energy, Elsevier, vol. 185(C), pages 804-819.

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