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Tytuł artykułu

Melting from an isothermal vertical wall. Synthesis of numerical comparison exercise

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This paper provides an analysis of the results of a comparison exercise on the numerical 2D solution of melting from a vertical wall, dominated by natural convection in the liquid phase. The thirteen contributions to this exercise cover the great variety of mathematical models and numerical procedures most commonly used in this field. The main conclusions presented at the AMIF Workshop (PCC99) held in Warsaw in June 1999 and at the Moving Boundaries Seminar in Ljubljana are summarized in the paper. They emphasize the need for the definition of such reference validation tests.
Rocznik
Strony
289--306
Opis fizyczny
Bibliogr. 21 poz., tab., wykr.
Twórcy
autor
  • Université Paris-Sud. Bât. 502.91405 - Orsay, FAST - UMR CNRS 7608, France
  • Université Paris-Sud. Bât. 502.91405 - Orsay, LIMISI - UPR CNRS 3251, France
Bibliografia
  • [1] M. Bareiss, H. Beer. Experimental investigation of melting heat transfer with regard to different geometric arrangements. Int. Comm. Heat Mass Transfer, 11: 323-333, 1984.
  • [2] C. Beckermann, R. Viskanta. Effect of solid subcooling on natural convection melting of a pure metal. J. Heat Transfer, 111: 416-424, 1989.
  • [3] C. B6nard, D. Gobin, F. Martinez. Melting in rectangular enclosures: experiments and numerical simulations. J. Heat Transfer, 107: 794-803, 1985.
  • [4] 0. Bertrand, B. Binet, H. Combeau, S. Couturier, Y. Delannoy, D. Gobin, M. Lacroix, P. Le Qućrć, M. Mćdale, J. Mencinger, H. Sadat, G. Vieira. Melting driven by natural convection. A comparison exercise: first results. Int. Journal of Thermal Sciences, 38: 5-26, 1999.
  • [5] T. A. Campbell, J. N. Koster. Visualization of solid-liquid interface morphologies in gallium subject to natural convection. J. Crystal Growth, 140: 414-425, 1994.
  • [6] J. A. Dantzig. Modeling liquid-solid phase changes with melt convection. Int. J. for Num. Methods Eng., 28: 1769-1785, 1989.
  • [7] C. Gau, R. Viskanta. Melting and solidification of a pure metal from a vertical wall. J. Heat Transfer, 108: 174-181, 1986.
  • [8] D. Gobin, C. Bćnard. Melting of metals driven by natural convection in the melt: influence of the Prandtl and Rayleigh numbers. J. Heat Transfer, 114: 521-524, 1992.
  • [9] C. J. Ho, R. Viskanta. Heat transfer during melting from an isothermal vertical wall. J. Heat Transfer, 106: 12-19, 1984.
  • [10] P. Jany, A. Bejan. Scaling theory of melting with natural convection in an enclosure. Int. J. Heat Mass Transfer, 31: 1221-1235, 1988.
  • [11] C. J. Kim, M. Kaviany. A numerical method for phase-change problems with convection and diffusion. Int. J. Heat Mass Transfer, 35: 457-467, 1992.
  • [12] M. Lacroix, V. R. Voller. Finite difference solutions of solidification phase change problems: transformed vs. fixed grids. Num. Heat Transfer, B-17: 25-41, 1990.
  • [13] P. be Qućrć, D. Gobin. A note on possible flow instabilities in melting from the side. Int. Journal of Thermal Sciences, 38: 595-600, 1999.
  • [14] J. S. Lim, A. Bejan. The Prandtl number effect on melting dominated by natural convection. J. Heat Transfer, 114: 784-787, 1992.
  • [15] M. Okada. Analysis of heat transfer during melting from a vertical wall. Int. J. Heat Mass Transfer 27: 2057-2066, 1984.
  • [16] R. Viskanta. Heat transfer during melting and solidification of metals. J. Heat Transfer, 110-4B: 1205-1219, 1988.
  • [17] R. Viswanath, Y. Jaluria. A comparison of different solution methodologies for melting and solidification problems in enclosures. Num. Heat Transfer, B-24: 77-105, 1993.
  • [18] V. R. Voller. An overview of numerical methods for solving phase-change problems. Adv. Num. Heat Transfer, Taylor and Francis, 1: 341-380, 1997.
  • [19] B. W. Webb, R. Viskanta. On the characteristic length scale for correlating melting heat transfer data. /nt. Comm. Heat Mass Transfer, 12: 637-646, 1985.
  • [20] F. Wolff, R. Viskanta. Melting of a pure metal from a vertical wall. Exp. Heat Transfer, 1: 17-30, 1987.
  • [21] L. S. Yao, J. Prusa. Melting and freezing, Advances in Heat Transfer 19: 1-95, 1989.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPB1-0005-0003
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