Details

Title

Influence of Chemical Composition on Concentration Undercooling of Structural Steels

Journal title

Archives of Foundry Engineering

Yearbook

2025

Volume

vol. 25

Issue

No 3

Authors

Affiliation

Aftandiliants, Y. : Physical and Technological Institute of Metals and Alloys, National Academy of Sciences of Ukraine, Ukraine ; Aftandiliants, Y. : National University of Life and Environmental Sciences of Ukraine, Ukraine ; Gnyloskurenko, S. : Physical and Technological Institute of Metals and Alloys, National Academy of Sciences of Ukraine, Ukraine ; Gnyloskurenko, S. : National University of Life and Environmental Sciences of Ukraine, Ukraine ; Meniailo, H. : National University of Life and Environmental Sciences of Ukraine, Ukraine ; Khrychikov, V. : National University of Life and Environmental Sciences of Ukraine, Ukraine

Keywords

Steel ; Chemical composition ; Melt ; Concentration undercooling ; Distribution coefficient ; Diffusion ; Crystallization rate ; Temperature gradient

Divisions of PAS

Nauki Techniczne

Coverage

195-203

Publisher

The Katowice Branch of the Polish Academy of Sciences

Bibliography

  • Gibbs, W. (1950). Thermodynamic works. Moscow: Nauka. (In Russian).
  • Volmer, M. (1939). Kinetik der Phasenbildung. Dresden, Leipzig: Steinkopf.
  • Sally, I. (1974). Crystallization of alloys. Kyiv: Naukova Dumka.
  • Frank, F. (1949). The influence of dislocations on crystal growth. Discusion of the Faraday Society. 5, 48-54.
  • Turnbull, D. & Fisher, J.C. (1949). Rate of Nucleation in Condensed Systems. Journal of Chemical Physics. 17(1), 71-73.
  • Volmer, M. & Marder, M. (1931). Zur Theorie der linearen Kristallisationsgeschwindigkeit unterkühlter Schmelzen und unterkühlter fester Modifikationen. Zeitschrift für Physikalische Chemie A, 154A(1), 97–112. https://doi.org/10.1515/zpch-1931-15405. (in German)
  • Flemings, M. (1974) Solidification processing. Metallurgical Transactions. 5(10), 2121–2134. https://doi.org/10.1007/BF02643923.
  • Hilling, W. & Turnbull, D. (1956). Theory of crystal growth in undercooled pure liquids. Journal of Chemical Physics. 24(4), https://doi.org/10.1063/1.1742646.
  • Turnbull, D. (1949) Thermodynamics in Metallurgy, ASM, Metals Park, Ohio.
  • Efimov, V., Eldarkhanov, A. (2004). Technologies of modern metallurgy. Moskva: Novye tehnologii. (in Russian)
  • Chalmers, B. (1968). Principles of Solidification. New-York-London-Sydney: John Wiley & Sons, Inc.
  • Tiller, W. A., Jackson, K. A., Rutter, J. W. & Chalmers, B. (1953). The redistribution of solute atoms during the solidification of metals. Acta Metallurgica. 1, 428–437.
  • Biloni, H., & Boettinger, W. J. (1996). Solidification. In R. W. Cahn & P. Haasen (Eds.), Physical Metallurgy (4th ed., pp. 669–842). Elsevier Science B.V.
  • Timofeev, G. (1977). Mechanics of alloys during crystallization of ingots and castings. Moskva: Metallurgy
  • Winegard, W. (1964). An introduction to the solidification of metals. London: The institute of metals.
  • Kurz, , Bezençon, C., & Gäumann, M. (2001). Columnar to equiaxed transition in solidification processing. Science and Technology of Advanced Materials. 2(1), 185-191. https://doi.org/10.1016/S1468-6996(01)00047-X.
  • Ono, A. (1980). Solidification of metals. Moscow: Metallurgy.
  • Hein, K., Buriga. E. (1987). Crystallization from melts. Moscow: Metallurgy.
  • Aftandilyants, E., Babaskin, Yu. (1995). Modeling of the process of dendritic structure formation in structural steel castings. Casting processes (Procesy litya). 4, 94-106. (in Russian).
  • Lepinskikh, B., Kaybichev, A., Savelyev, Y. (1974). Diffusion of elements in liquid metals of the iron group. Moscow: Nauka.
  • Ershov, G., Mayboroda, V. (1990). Diffusion in metal melts. Kyiv: Naukova Dumka.
  • Aftandilyants, E. (2019). Phase transformations of austenitic stainless modified steels. The Scientific Technical journal Metal Science and Treatment of Metals. 25, 2. 11-17. https://doi.org/10.15407/mom2019.02.011
  • Aftandiliants, Y., Gnyloskurenko, S., Meniailo, H. & Khrychikov, V. (2024). Influence of melt properties on the dendritic structure of steel castings. Archives of Foundry Engineering. 24(1), 5-14. DOI: 10.24425/afe.2024.149245.
  • Golod, V. M. & Orlova, I. G. (2012). Analysis of structural microheterogeneity of low-carbon steels based on computer modeling of their solidification conditions. Scientific and Technical Statements of SPbSPU. Series “Science and Education”. 2012(1), 177–182. (in Russian).
  • Denisov, V.A. & Denisov, A.V. (1983). Method of calculation of solidification temperatures of steel. Foundry production (Liteynoye proizvodstvo). 5, (in Russian)
  • Van Vlack, H. (1975). Materials Science for engineers. California-London-Ontario: Addision –Wesley Publishing company.
  • Morita, Z. & Tanaka, T. (1983). Thermodynamics of Solute Distributions between Solid and Liquid Phases in Iron-base Ternary Alloys. Transactions of the Iron and Steel Institute of Japan. 23(10), 824-833. https://doi.org/10.2355/isijinternational1966.23.824
  • Shmigra, L. (1985). Crystallization and solidification of steel ingots. Moscow: Metallurgiya. (in Russian).
  • Morita, Z. & Tanaka, T. (2003). Thermodynamics of Equilibrium Distribution of Solute Elements in Solidification Process of Steel. High Temperature Materials and Processes. 22(5-6), 329-336.
  • Parusov, E.V., Sychkov, O.B., Gubenko, S.I., Sagura, L.V. (2016). Influence of chemical composition and dendritic structure of continuously cast billets on the appearance of liquation phenomena in bundle rolled products. Reporter of the Priazovskyi state technical university. Series: Technical sciences. 32, 61-71. (in Ukrainian) http://nbuv.gov.ua/UJRN/vpdty_2016_32_11
  • Kazachkov, E.A., Fedosov, A.V. (2006). Peculiarities of axial liquation formation in continuous cast slab. Bulletin of the Azov State Technical University. Series: Technical sciences. 16, 1-5.
  • Gubenko, S.I. (2015). Non-metallic inclusions and strength of steels. Palmarium Academic Publishing. Deutschland (In Russian).
  • microscope MIM-10. (2024). Technical characteristics. Retrieved January 17, 2025, from https://asma.net.ua/uk/p/1464605834-mikroskop-mim-10-metallograficheskiy/

 

Date

12.09.2025

Type

Article

Identifier

DOI: 10.24425/afe.2025.155368
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