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Experimental investigation on the airside performance of fin-and-tube heat exchangers having herringbone wave fins and proposal of a new heat transfer and pressure drop correlation

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Abstract

The heat transfer and friction characteristics of fin-and-tube heat exchangers having herringbone wave fins were experimentally investigated. Eighteen samples having different fin pitches (1.34 mm to 2.54 mm) and tube rows (one to four) were tested. For all the samples, the waffle depth and the corrugation angle of the fin was 1.14 mm and 11.7o respectively. Results showed that the j factors were insensitive to fin pitch, while f factors increased as the fin pitch increased. As the number of tube rows increased, both the j and f factors decreased. However, the effect of tube row diminished as the Reynolds number increased, at least for j factors. Existing correlations failed to adequately predict the present data. A new correlation was developed based on existing data, which significantly improved the predictions of the present data.

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References

  1. R. L. Webb and N. H. Kim, Principles of enhanced heat transfer, Taylor and Francis Pub. (2005).

  2. C. C. Wang, On the Airside Performance of Fin-and-Tube Heat Exchangers, in S. Kakac et al. (Eds.) Heat Transfer Enhancement of Heat Exchangers. Kluwer Academic Press, (1999) 141–162.

  3. L. Goldstein and E. M. Sparrow, Experiments on the Transfer Characteristics of a Corrugated Fin-and-Tube Heat Exchanger Configuration, J. Heat Transfer 98 (1976) 26–34.

    Google Scholar 

  4. M. M. Ali and S. Ramadhyani, S., Experiments on Convective Heat Transfer in Corrugated Channels, Experimental Heat Transfer 5 (1992) 175–193.

    Google Scholar 

  5. N.-H. Kim, J.-H. Yun and R. L. Webb, Heat Transfer and Friction Correlations for Wavy Plate Fin-and-Tube Heat Exchangers, J. Heat Transfer 119 (1997) 560–567.

    Article  Google Scholar 

  6. D. T. Beecher and T. J. Fagan, Effects of Fin Pattern on the Airside Heat Transfer Coefficients in Plate Finned Tube Heat Exchangers, ASHRAE Trans. 93(2) (1987) 1961–1984.

    Google Scholar 

  7. C. C. Wang, W. L. Fu and C. T. Chang, Heat Transfer and Friction Characteristics of Typical Wavy Fin-and-Tube Heat Exchangers, Exp. Thermal Fluid Science 14 (1997) 174–186.

    Article  Google Scholar 

  8. C. C. Wang, Y. M. Tsai and D. C. Lu, Comprehensive Study of Convex Louver and Wavy Fin-and-Tube Heat Exchangers, J. Thermophysics Heat Transfer 12(3) (1998) 423–430.

    Article  Google Scholar 

  9. C. C. Wang, Y. T. Lin, C. J. Lee and Y. J. Chang, Investigation of Wavy Fin-and-Tube Heat Exchangers: A Contribution to Databank, Experimental Heat Transfer 12 (1999) 73–89.

    Article  Google Scholar 

  10. C. C. Wang, Y. J. Chang and N. F. Chiou, Effects of Waffle Height on the Airside Performance of Wavy Fin-and-Tube Heat Exchangers, Heat Transfer Engineering 20(3) (1999) 45–56.

    Article  Google Scholar 

  11. J. M. Saiz Jabardo, J. R. Bastos Zoghbi Filho and A. Salamanca, Experimental Study of the Airside Performance of Louver and Wave Fin-and-Tube Coils, Exp. Thermal Fluid Science 30 (2006) 621–631.

    Article  Google Scholar 

  12. S. Wongwises and Y. Chokeman, Effect of Fin Thickness on Airside Performance of Herringbone Wavy Fin-and-Tube Heat Exchangers, Heat Mass Transfer 41 (2004) 147–154.

    Google Scholar 

  13. Y. Chokeman and S. Wongwises, Effect of Fin Pattern on the Airside Performance of Herringbone Wavy Fin-and-Tube Heat Exchangers, Heat Mass Transfer 41 (2005) 642–650.

    Article  Google Scholar 

  14. D. R. Mirth and S. Ramadhyani, Correlations for Predicting the Airside Nusselt Numbers and Friction Factors in Chilled Water Cooling Coils, Experimental Heat Transfer 7 (1994) 143–162.

    Article  Google Scholar 

  15. N.-H. Kim, J.-P. Cho and Y. Baek, An Experimental Investigation on the Airside Performance of Fin-and-Tube Heat Exchangers Having Sinusoidal Wave Fins, Korean J. Air-Conditioning and Refrigeration 16(4) (2004) 355–367.

    Google Scholar 

  16. ASHRAE Standard 41.1, Standard Method for Temperature Measurement (1986).

  17. ASHRAE Standard 41.2, Standard Method for Laboratory Air-Flow Measurement (1987).

  18. ASHRAE Standard 41.5, Standard Measurement Guide, Engineering Analysis of Experimental Data (1975).

  19. J. Taborek, F and θ Charts for Cross-Flow Ar rangements, in: G. F. Hewitt (Ed.) Heat Exchanger Design Handbook. Section 1.5.3, Begell House Inc. (1998).

  20. V. Gnielinski, New Equation for Heat and Mass Transfer in Turbulent Pipe and Channel Flow, Int. Chem. Eng. 16 (1976) 359–368.

    Google Scholar 

  21. T. E. Schmidt, Heat Transfer Calculations for Extended Surfaces, J of ASRE, Refrigeration Engineering 4 (1949) 351–357.

    Google Scholar 

  22. C. C. Wang, R. L. Webb and K. Y. Chi, Data Reduction for Airside Performance of Fin-and-Tube Heat Exchangers, Experimental Thermal Fluid Science 21 (2000) 218–226.

    Article  Google Scholar 

  23. D. G. Rich, The Effect of Fin Spacing on the Heat Transfer and Friction Performance of Multi-Row, Plate Fin-and-Tube Heat Exchangers, ASHRAE Trans. 79(2) (1973) 137–145.

    Google Scholar 

  24. C. C. Wang, Y. J. Chang, Y. C. Hsieh and Y. T. Lin, Y. T., Sensible Heat and Friction Characteristics of Plate Fin-and-Tube Heat Exchangers Having Plain Fins, Int. J. Refrigeration 19(4) (1996) 223–230.

    Article  Google Scholar 

  25. D. G. Rich, The Effect of the Number of Tube Rows on Heat Transfer Performance of Smooth Plate Fin-and-Tube Heat Exchangers, ASHRAE Trans. 81(1) (1975) 307–317.

    Google Scholar 

  26. K. Torikoshi, G. N. Xi., Y. Nakazawa and H. Asano, Flow and Heat Transfer Performance of a Plate Fin and Tube Heat Exchanger (First Report: Effect of Fin Pitch), Heat Transfer 1994, Proceedings of the 10th Int. Heat Transfer Conf., 4 (1994) 411–416.

    Google Scholar 

  27. J.-Y. Jang and L.-K. Chen, Numerical Analysis of Heat Transfer and Fluid Flow in a Three-Dimensional Wavy Fin-and-Tube Heat Exchanger, Int. J. Heat Mass Transfer 40(16) (1997) 3981–3990.

    Article  Google Scholar 

  28. C.-K. Min, J.-P. Cho, W.-K. Oh and N.-H. Kim, Heat Transfer and Pressure Drop Characteristics of Heat Exchangers Having Plain Fins Under Dry and Wet Conditions, Korean J. Air-Conditioning and Refrigeration 16(3) (2004) 218–229.

    Google Scholar 

  29. C. C. Wang, J. Y. Jang and N. F. Chiou A Heat Transfer and Friction Correlation for Wavy Fin-and-Tube Heat Exchangers, Int. J. Heat Mass Trans., 42 (1999) 1919–1924.

    Article  Google Scholar 

  30. M. Jakob, Heat Transfer and Flow Resistance in Crossflow of Gases over Tube Banks, Trans. ASME 60 (1938) 384.

    Google Scholar 

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Correspondence to Nae-Hyun Kim.

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Kim, NH., Ham, JH. & Cho, JP. Experimental investigation on the airside performance of fin-and-tube heat exchangers having herringbone wave fins and proposal of a new heat transfer and pressure drop correlation. J Mech Sci Technol 22, 545–555 (2008). https://doi.org/10.1007/s12206-007-1116-4

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  • DOI: https://doi.org/10.1007/s12206-007-1116-4

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