Conferences

THERMODYNAMIC PROPERTIES of ALLOYS AND PHASE EQUILIBRIA IN the Cu–Yb SYSTEM 

A.S. Dudnyk 1,
   
Kudin V.G 2,
  
M.O. Shevchenko 3
 

1 I. M. Frantsevich Institute for Problems of Materials Science of the NAS of Ukraine, Omeliana Pritsaka str.,3, Kyiv, 03142, Ukraine
2 Taras Shevchenko National University of Kyiv, Kyiv, Ukraine
3 The University of Queensland, Brisbane, Australia, 4072
sud.materials@ukr.net

Powder Metallurgy - Kiev: Frantsevich Institute for Problems of Materials Science NASU, 2022, #05/06
http://www.materials.kiev.ua/article/3441

Abstract

The partial and integral mixing enthalpies of Cu-Yb melts were first determined at 1453 K in the composition range 0 < xCu <0.7 by isoperibolic calorimetry. The Cu–Yb melts were established to form with the release of a small amount of heat: minimum mixing enthalpy DH = –9.7 ± 0.8 (at xCu = 0.7), which correlates with the published data for these melts in the composition range 0 <xYb < 0.3 at 1453 K and for other Cu–Ln systems. The model of ideal associated solutions was used to optimize and calculate all thermodynamic properties (Gibbs energies, enthalpies, and entropies of formation) for melts, intermetallic compounds, and associates of the Cu–Yb system. The calculated activities of the components in the melts of this system exhibited moderate negative deviations from ideal solutions. The calculations with the ideal associated solution model also showed that increased insignificantly and  more substantially in the Cu–Yb with higher temperature. The ideal associated solution model was applied to calculate temperature–composition dependences of the Gibbs energies, enthalpies, and entropies of formation for the melts and intermetallics to determine the coordinates of the liquidus curve in the phase diagram of the studied system. The calculated and experimental data were in good agreement. Full information on the thermodynamic properties of all phases and phase equilibria in the alloys (or thermodynamic description) of the Cu–Yb system was obtained.


CALORIMETRY, CU, INTERMETALLIC, MELT, MODEL OF IDEAL ASSOCIATED SOLUTIONS, PHASE EQUILIBRIA, THERMODYNAMIC PROPERTIES, YB