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Part A: Materials Science

Review of viscosity prediction models of liquid pure metals and alloys

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Pages 853-868 | Received 13 Nov 2018, Accepted 13 Dec 2018, Published online: 03 Jan 2019

References

  • X.-Y. Teng, B. Wang, Z.-M. Wang and H.-R. Geng, Fluidity of molten binary Fe-xC alloy. Foundry Technol. 28 (2007), pp. 628.
  • O. Ostrovski and D.K. Belashchenko, Thermophysical properties and structure of liquid Fe–C alloys. High Temperatures–High Pressures 42 (2013), pp. 137.
  • O. Takeda, N. Ouchi and Y. Sato, Viscosity of molten Fe–B alloy. ISIJ Int. 55 (2015), pp. 500. doi: 10.2355/isijinternational.55.500
  • Y. Kawai, Y. Shiraishi, Handbook of Physico-Chemical Properties at High Temperatures, Iron and Steel Institute of Japan, Japan, 1988
  • Y.-S. Sun, The Viscosity Research of Al-Fe Alloys, SDU, China, 2013
  • J. Cheng, J. Gröbner, N. Hort, K. Kainer and R. Schmid-Fetzer, Measurement and calculation of the viscosity of metals – a review of the current status and developing trends. Meas. Sci. Technol. 25 (2014), pp. 062001. doi: 10.1088/0957-0233/25/6/062001
  • L. Vočadlo, D. Alfè, G.D. Price and M.J. Gillan, First principles calculations on the diffusivity and viscosity of liquid Fe–S at experimentally accessible conditions. Phys. Earth Planet. Inter. 120 (2000), pp. 145. doi: 10.1016/S0031-9201(00)00151-5
  • X.J. Liu, T. Yamaki, I. Ohnuma, R. Kainuma and K. Ishida, Thermodynamic calculations of phase equilibria, surface tension and viscosity in the In-Ag-X (X=Bi, Sb) system. Mater. Trans. 45 (2004), pp. 637. doi: 10.2320/matertrans.45.637
  • R. Schmid-Fetzer and J. Gröbner, Focused development of magnesium alloys using the calphad approach. Adv. Eng. Mater. 3 (2001), pp. 947. doi: 10.1002/1527-2648(200112)3:12<947::AID-ADEM947>3.0.CO;2-P
  • E.N.d.C. Andrade, A theory of the viscosity of liquids.—part II, The London, Edinburgh, and Dublin. Philos. Mag. J. Sci. 17 (1934), pp. 698. doi: 10.1080/14786443409462427
  • A. Batchinski, Investigations on the internal friction of liquids. Z. Physik. Chem. 84 (1913), pp. 643.
  • J. Hillbrand, Viscosity and Diffusivity, A Predictive Treatment, Wiley, New York, 1977.
  • A.K. Doolittle, Studies in Newtonian flow. II. The dependence of the viscosity of liquids on temperature. J. Appl. Phys. 22 (1951), pp. 1471. doi: 10.1063/1.1699894
  • G.-R. Liu, Research on Correlation between Viscosity and Structure of Liquid Al-In and Ag-Sn Alloys, SDU, China, 2014.
  • Y. Sato, Representation of the viscosity of molten alloy as a function of the composition and temperature. Japan J. Appl. Phys. 50 (2011), pp. 11RD01. doi: 10.7567/JJAP.50.11RD01
  • M.H. Cohen and D. Turnbull, Molecular transport in liquids and glasses. J. Chem. Phys. 31 (1959), pp. 1164. doi: 10.1063/1.1730566
  • G. Kaptay, A unified equation for the viscosity of pure liquid metals, Zeitschrift für Metallkunde 96 (2005) p. 24. doi: 10.3139/146.018080
  • I. Budai, M.Z. Benkő, G. Kaptay, Comparison of different theoretical models to experimental data on viscosity of binary liquid alloys, in Materials Science Forum, Trans Tech Publ, Switzerland, 2007. pp. 489
  • M. Hirai, Comparison of different theoretical models to experimental data on viscosity of binary liquid alloys. ISIJ Int. 33 (1993), pp. 251. doi: 10.2355/isijinternational.33.251
  • F.A. Lindemann, Estimation of viscosities of liquid alloys. Phys. z 11 (1910), pp. 609.
  • L. Battezzati and A. Greer, The calculation of molecular vibration frequencies. Acta Metall. 37 (1989), pp. 1791. doi: 10.1016/0001-6160(89)90064-3
  • T. Iida and R.I. Guthrie, The Physical Properties of Liquid Metals, Clarendon Press, Oxford, 1988.
  • R.N. Singh and F. Sommer, Viscosity of liquid alloys: generalization of Andrade’s equation. Monatshefte für Chemie-Chemical Monthly 143 (2012), pp. 1235. doi: 10.1007/s00706-012-0728-2
  • A. Wheeler, B. Topley and H. Eyring, The absolute rates of reaction of hydrogen with the halogens. J. Chem. Phys. 4 (1936), pp. 178. doi: 10.1063/1.1749816
  • S. Seetharaman and D. Sichen, Estimation of the viscosities of binary metallic melts using Gibbs energies of mixing. Metall. Mater. Trans. B25 (1994), pp. 589. doi: 10.1007/BF02650079
  • G. Kaptay, Modelling interfacial energies in metallic systems, in Materials Science Forum, Trans Tech Publ, Switzerland, 2005. pp. 1
  • G. Kaptay, A New Equation to Estimate the Concentration Dependence of the Viscosity of Liquid Metallic Alloys from the Heat of Mixing Data, in Proceedings of microCAD 2003 International Conference, 2003, p. 23.
  • S. Glasstone, K.J. Laidler, H. Eyring, The Theory of Rate Processes: The Kinetics of Chemical Reactions, Viscosity, Diffusion and Electrochemical Phenomena, McGraw-Hill Book Company, New York, 1941
  • L. Darken, Thermodynamics of ternary metallic solutions. AIME Met. Soc. Trans. 239 (1967), pp. 90.
  • X.-D. Wang, H. Bao, W.-C. Li, A new model to predict the viscosity of multi-component merallic melts. J. Metal 37 (2001), pp. 52
  • K.-C. Chou and Y. Austin Chang, A study of ternary geometrical models. Berichte der Bunsengesellschaft für Physikalische Chemie 93 (1989), pp. 735. doi: 10.1002/bbpc.19890930615
  • K.-C. Chou and S.-K. Wei, A new generation solution model for predicting thermodynamic properties of a multicomponent system from binaries. Metall. Mater. Trans. B28 (1997), pp. 439. doi: 10.1007/s11663-997-0110-7
  • E.A. Moelwyn-Hughes, H. Göhr, W. Jaenicke, Physikalische Chemie, Georg Thieme Verlag, Germany, 1970
  • T. Iida, M. Ueda and Z.-I. Morita, On the excess viscosity of liquid alloys and the atomic interaction of their constituents. Tetsu-to-hagane 62 (1976), pp. 1169. doi: 10.2355/tetsutohagane1955.62.9_1169
  • Z. Morita, T. Iida and M. Ueda, The excess viscosity of liquid binary alloys. Liquid Met. 1976 (1977), pp. 600.
  • L.Y. Kozlov, L. Romanov, and N. Petrov, Izv. vysch. uch. zav, Chernaya Metallurgiya 3 (1983).
  • M. Schick, J. Brillo, I. Egry, and B. Hallstedt, Viscosity of Al–Cu liquid alloys: Measurement and thermodynamic description, J. Mater. Sci. 47 (2012), p. 8145. doi: 10.1007/s10853-012-6710-x
  • X.-M. Zhong, J. Zhu, X.-J. Hu, X.-M. Guo, F.-X. Li, and K.-C. Chou, The viscosity of the multivariate system is calculated in combination with Moelwyn-Hughes model, in the 10th national conference on graphic science, China, 2000, p. 4.

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