TY - GEN
T1 - DETERMINATION OF PHASE TRANSFORMATION TEMPERATURES OF 20MnCr5 STEEL USING COMPUTHERM THERMODYNAMIC DATABASE AND DESIGN OF REGRESSION EQUATIONS
AU - Chudobová, Lucie
AU - Tkadlečková, Markéta
AU - Cibulka, Jiří
AU - Strouhalová, Michaela
AU - Michalek, Karel
AU - Walek, Josef
AU - Sniegoň, Michal
AU - Merder, Tomasz
N1 - Publisher Copyright:
© 2021 TANGER Ltd., Ostrava.
PY - 2021
Y1 - 2021
N2 - The paper presents analysis of phase transformation temperatures of 20MnCr5 steel. For calculations of required temperatures, i.e. liquidus temperature (TL) and solidus temperature (TS) was used CompuTherm thermodynamic database. The aim of this paper was the use calculated temperatures from CompuTherm thermodynamic database to design regression equations for calculation of the phase transformation temperatures. From the results it is obvious that in the calculation of individual temperatures, the chemical composition has a significant effect on changes of the values of given temperatures. The resulting temperatures also vary depending on the used calculation method (the Lever method proved to be the most suitable). The mean value of liquidus temperature is 1,508 °C and the solidus temperature is 1,462 °C (using CompuTherm and the Lever method). The range of the two-phase zone region for the average content of elements within the limits of 20MnCr5 steel grade is thus 46 °C. Furthermore, the resulting regression equations are given in the work, determined by regression analysis of 66 possible variants of chemical composition of steel 20MnCr5 phase transformation temperatures calculated for defined chemical compositions by thermodynamic database CompuTherm. These equations can be used in operational conditions for calculations of phase transformations in the limit values of the used chemical composition of a given steel grade. When using a different range of chemical composition, these equations can be used, but without guaranteed results.
AB - The paper presents analysis of phase transformation temperatures of 20MnCr5 steel. For calculations of required temperatures, i.e. liquidus temperature (TL) and solidus temperature (TS) was used CompuTherm thermodynamic database. The aim of this paper was the use calculated temperatures from CompuTherm thermodynamic database to design regression equations for calculation of the phase transformation temperatures. From the results it is obvious that in the calculation of individual temperatures, the chemical composition has a significant effect on changes of the values of given temperatures. The resulting temperatures also vary depending on the used calculation method (the Lever method proved to be the most suitable). The mean value of liquidus temperature is 1,508 °C and the solidus temperature is 1,462 °C (using CompuTherm and the Lever method). The range of the two-phase zone region for the average content of elements within the limits of 20MnCr5 steel grade is thus 46 °C. Furthermore, the resulting regression equations are given in the work, determined by regression analysis of 66 possible variants of chemical composition of steel 20MnCr5 phase transformation temperatures calculated for defined chemical compositions by thermodynamic database CompuTherm. These equations can be used in operational conditions for calculations of phase transformations in the limit values of the used chemical composition of a given steel grade. When using a different range of chemical composition, these equations can be used, but without guaranteed results.
KW - Liquidus temperature
KW - Phases
KW - Solidus temperature
KW - Steel
KW - Transformation
UR - https://www.scopus.com/pages/publications/85124374259
U2 - 10.37904/metal.2021.4083
DO - 10.37904/metal.2021.4083
M3 - Conference contribution
AN - SCOPUS:85124374259
T3 - METAL 2021 - 30th Anniversary International Conference on Metallurgy and Materials, Conference Proceedings
SP - 40
EP - 45
BT - METAL 2021 - 30th Anniversary International Conference on Metallurgy and Materials, Conference Proceedings
PB - TANGER Ltd.
T2 - 30th International Conference on Metallurgy and Materials, METAL 2021
Y2 - 26 May 2021 through 28 May 2021
ER -