Physics of the Solid State
Volumes and Issues
Calorimetry of eutectoid transformation in the Fe-C system
Spivak L. V.1, Shchepina N. E.2
1Perm State University, Perm, Russia
2Institute of Natural Sciences of Perm State University, Perm, Russia
Email: lspivak2@mail.ru

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The regularities of the manifestation of endothermic and exothermic effects during the transformations of perlite and austenite have been studied using differential scanning calorimetry. The enthalpy and entropy of eutectoid transformation at different heating and cooling rates were estimated by direct measurements. In particular, for a heating rate of 5 K/min Δ H=2380 J/mol and the entropy of such a transition is Δ S=2.32 J/(mol·K). It is suggested that in pre-eutectoid steels, when heated above the AC1 point (the critical point in the Fe-Cstate diagram when heated), the transition of perlite to austenite and the transition of excess ferrite to austenite occurs by its own set of mechanisms, each of which is realized at different temperatures in the intercritical (between points AC1 and AC3) temperature range. An explanation of the independence of the temperature of the AC1 point from the carbon content in Fe-C alloys is proposed Keywords: perlite, austenite, ferrite, phase.
  1. A.K. Kolmogorov. Izv. AN SSSR. Ser. matem. 1, 3, 355 (1937)
  2. W.W. Wendlandt. Thermal Methods of Analysis. 2nd ed. John Wiley \& Sons (1974). 505 p
  3. J. v Sestak. Thermophysical Properties of Solids. Measurments. Their Theoretical Thermal Analysis. Academia Prague (1984). 456 p
  4. A.K. Galwey, M.E. Brown. Handbook of Thermal Analysis and Calorimetry. V. 1: Principles and Practice / Ed. M.E. Brown. Elsevier Science B.V. (1998). 147 p
  5. Introduction to thermal analysis / Ed. M.E. Brown. Kliwer Academic Publishers. N.Y., Boston, Dordricht, London, Moscow (2001). 264 p
  6. M. Avrami. J. Chem. Phys. 7, 12, 1103 (1939). https://doi.org/10.1063/1.1750380
  7. H.E. Kissinger. Anal. Chem. 29, 11, 1702 (1957). https://doi.org/10.1021/ac60131a045
  8. S. Vyazovkin, A.K. Burnham, J.M. Criado, L.A. Perez-Maqueda, C. Popescu, N. Sbirrazzuoli. Thermochim. Acta 520, 1--2, 1 (2011). https://doi.org/10.1016/j.tca.2011.03.034
  9. S.M. Sarge, G.W.H. Hohne, W.F. Hemminger. Calorimetry: Fundamentals, Instrumentation and Applications. Wiley-VCH Verlag GmbH \& Co. KGaA: Weinheim, Germany (2014). 280 p
  10. S.V. Grachev. Fizicheskoe metallovedenie: uchebnik dlya vuzov / Pod. red. S.V. Grachev, V.R. Baraz, A.A. ogatov, V.P. Shveikin Izd-vo Uralskogo gos.un-ta, UPI, Ekaterinburg (2001). 534 p. (In Russian)
  11. L.V. Spivak, N.E. Shchepina. Tech. Phys. 65, 7, 1100 (2020)
  12. S.S. Diachenko. Obrazovanie austenita v zhelezouglerodistykh splavakh. Metallurgiya, M., (1982). 128 p. (in Russian)
  13. V.I. Zel'dovich. Metal Sci. Heat Treatment 50, 9--10, 442 (2008)
  14. D.O. Panov, A.I. Smirnov. Phys. Metals. Metallogr. 118, 11, 1073 (2017)
  15. L.V. Spivak, N.E. Schepina. Metally 1, 1 (2024). (in Russian)
  16. S.S. Diachenko. MiTOM 4, 14 (2000). (in Russian)

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