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Simulation of frost deposition on the surface of elliptical cylinder

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Języki publikacji
EN
Abstrakty
EN
This paper is focused on frost deposition phenomena on elliptical cylinder. The mathematical model is presented for prediction of frost layer parameters. This model is based on heat transfer coefficient distribution on the surface of such elliptical cylinder. The heat transfer coefficient was calculated by ANSYS-CFX - program for thermal-flow problems simulations. The results of the simulations are compared with the experimental data obtained on the experimental stand specially made for that purpose. /
Rocznik
Strony
41--56
Opis fizyczny
Bibliogr. 14 poz.,Wz., wykr., tab., rys.
Twórcy
autor
autor
  • Technical University of Łodź, Department of Heat Technology and Refrigeration, ul. Stefanowskiego 1/15, 90-924 Łódź, Poland, jkus@p.lodz.pl
Bibliografia
  • [1] EGRICAN N., KARATAS H., SEKER D.: Frost formation on fin-and-tube heat exchangers. Part I - Modeling of frost formation on fin-and-tube heat exchangers, Intern. J. of Refrigeration, 27 (2004), 367-374.
  • [2] WEBB R. L., NA B.: New model for frost growth rate, Intern. J. of Heat and Mass Transfer, 47 (2004), 925-936.
  • [3] ISMAIL K. A. R., GONZALVES M. M., SALINAS C.: Frost growth around a cylinder in a wet air stream, Intern. J. of Refrigeration 20 (1997), 106-119.
  • [4] HUANG C. H.: An inverse geometry problem in estimating frost growth on an evaporating tube, Intern. J. of Heat and Mass Transfer, 38 (2002), 615-623.
  • [5] SHERIF S. A., MAGO P. J.: Heat and mass transfer on a cylinder surface in cross flow under supersaturated frosting conditions, Intern. J. of Refrigeration, 26 (2003), 889-899.
  • [6] RAJU S. P., SHERIF S. A.: Frost formation and heat transfer on circular cylinders in cross-flow, Intern. J. of Refrigeration, 16 (1993).
  • [7] ISMAIL K. A. R., SALINAS C. S.: Modeling of frost formation over parallel cold plates, Intern. J. of Refrigeration, 22 (1999), 425-441.
  • [8] JONES B. W., PARKER J. D.: Frost formation with varying environmental parameters, J. of Heat Transfer, May 1975.
  • [9] LEE KWAN-SOO, KIM WOO-SEUNG, LEE TAE-HEE: A one-dimensional model for frost formation on a cold flat surface, Intern. J. of Heat and Mass Transfer, 40 (1997), 4359-4365.
  • [10] SHERIF S. A., RAJU S. P., PADKI M. M., CHAN A. B.: A semi-empirical transient method for modeling frost formation on a flat plate, Rev. Int. Froid, Vol. 16,1993, No. 5.
  • [11] ASHRAE handbook-fundamentals, The Amer. Soc. of Heating, Refrigerating and Air-Cond. Engs., Atlanta, Georgia, 2001.
  • [12] HAYASHI Y., AOKI A., YUHARA H.: Study of frost formation based on theoretical model of frost layer, Heat Transfer - Japanese Research, 1977, 6(3), 79-94.
  • [13] WIŚNIEWSKI S.: Heta Transfer, PWN, Warszawa, 1997 (in Polish).
  • [14] FODEMSKI T. R.: Forced convection film boiling in the stagnation region of a molten drop and its application to vapour explosions, Int. J. Heat and Mass Trans., 35, 8, 1992.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BGPK-1840-7050
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