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Measurement of radiative heat transfer coefficient in a high temperature circulating fluidized beds

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Abstract

Experimental measurements of the radiative heat flux were made, and radiative heat transfer coefficients were determined for a circulating fluidized bed of sand particles of mean diameters of 137 and 264 microns. The bed used in this study measured 0.05 m in diameter. The heat transfer test section was 0.9 m long and located in the middle of CFB riser. Operating temperature was varied from 200–600 °C, and the gas velocity in the CFB riser varied from 6 m/s to 11 m/s. The suspension densities covered a range from 3 to 35 kg/m3. Time-averaged radiative heat flux was directly measured with a radiometer. Radiative heat flux and suspension emissivity showed strong dependence on the suspension density. Particle size effect on suspension emissivity was observed. Experimentally determined suspension emissivities, which ranged from 0.3 to 0.85, were in good agreement with the predicted suspension emissivity based on independent scattering theory. The radiative heat transfer coefficients were determined from the measured radiative heat fluxes and were found to be well predicted by the Stefan-Boltzmann law. It was also found that for a dilute system, the prediction of suspension emissivity by Hottel and Sarofim, in conjunction with independent scattering theory of Brewster and Tien, showed good agreement with experimentally determined suspension emissivity.

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References

  1. Y. Ma and J. X. Zhu, Chem. Eng. Sci., 55, 981 (2000).

    Article  CAS  Google Scholar 

  2. P. Basu, Radiative heat transfer from a fast fluidized bed combustor, presented at 2nd International Conference on Circulating Fluidized Bed, France (1988).

  3. R. L. Wu, J. R. Grace, C. J. Lim and C. H. Brereton, AIChE J., 35, 1685 (1989).

    Article  CAS  Google Scholar 

  4. B. A. Anderson, Powder Tech., 87, 239 (1996).

    Article  CAS  Google Scholar 

  5. A. P. Baskakov and B. Leckner, Powder Tech., 90, 213 (1997).

    Article  CAS  Google Scholar 

  6. W. Luan, C. J. Lim, C.M. H. Brereton, B. D. Bowen and J. R. Grace, Chem. Eng. Sci., 54, 3749 (1999).

    Article  CAS  Google Scholar 

  7. G. Y. Han and Y. J. Cho, Powder Tech., 102, 266 (1999).

    Article  CAS  Google Scholar 

  8. G. Y. Han, K. Tuzla and J. C. Chen, AIChE J., 48, 1910 (2002).

    Article  CAS  Google Scholar 

  9. H. C Hottel and A. F. Sarofim, in Radiative Transfer, McGraw-Hill (1967).

  10. L.R. Glicksman, Circulating fluidized bed technology II, Pergamon Press, Canada (1988).

    Google Scholar 

  11. M.Q. Brewster and C.L. Tien, Trans. AMSE. Series C, J. Heat Transfer, 104, 573 (1982).

    Article  CAS  Google Scholar 

  12. H. Kobro and C. Brereton, Circulating fluidized bed technology, Pergamon Press, Canada (1986).

    Google Scholar 

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Correspondence to Gui Young Han.

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Lee, S.C., Han, G.Y. Measurement of radiative heat transfer coefficient in a high temperature circulating fluidized beds. Korean J. Chem. Eng. 26, 1395–1398 (2009). https://doi.org/10.1007/s11814-009-0206-7

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  • DOI: https://doi.org/10.1007/s11814-009-0206-7

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