Including state-of-the-art physical understanding of thermal vacancies in Calphad models

被引:2
作者
Obaied, A. [1 ,2 ]
Roslyakova, I [1 ]
Baben, M. To [2 ]
机构
[1] Ruhr Univ, ICAMS, Univ Str 150, D-44801 Bochum, Germany
[2] GTT Technol, Herzogenrath, Germany
关键词
SELF-DIFFUSION; HEAT-CAPACITY; THERMODYNAMIC PROPERTIES; TITANIUM; METALS; STABILITY; FRAMEWORK; ENERGIES; ELEMENTS; PHASES;
D O I
10.1038/s41598-022-16926-5
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
A physically sound thermochemical model accounting for explicit thermal vacancies in elements and alloys is presented. The model transfers the latest theoretical understanding of vacancy formation into the Calphad formalism where it can extend currently available thermodynamic databases to cover vacancy concentrations without a complete re-assessment. The parametrization of the model is based on ab initio-calculated enthalpy of vacancy formation and two model parameters describing the excess heat capacity of vacancy formation. Excellent agreement is obtained with temperature-dependent vacancy concentrations and elemental heat capacities while reasonable extrapolation of phase stability to high temperatures is ensured. Extrapolation to multicomponent systems is reasonable and the long-standing Neumann-Kopp related problem in the Calphad community is solved since multicomponent solid solutions will no longer show fingerprints of elemental heat capacity peaks at their melting points. FCC-Ag, FCC-Al and FCC-Cu, FCC-Zn, FCC-Ni, BCC-Ti, and BCC-W are used as a demonstration, along with the Cu-Zn binary system.
引用
收藏
页数:12
相关论文
共 58 条
  • [1] A description of vacancy complexes in an FCC solid solution within the framework of the CALPHAD Method
    Abe, Taichi
    Shimono, Masato
    Hashimoto, Kiyoshi
    Kocer, Cenk
    [J]. CALPHAD-COMPUTER COUPLING OF PHASE DIAGRAMS AND THERMOCHEMISTRY, 2018, 63 : 100 - 106
  • [2] Description of Thermal Vacancies in the CALPHAD Method
    Abe, Taichi
    Hashimoto, Kiyoshi
    Shimono, Masato
    [J]. MATERIALS TRANSACTIONS, 2018, 59 (04) : 580 - 584
  • [3] Thermodynamic modelling of vacancies as a constituent
    Agren, John
    Hillert, Mats
    [J]. CALPHAD-COMPUTER COUPLING OF PHASE DIAGRAMS AND THERMOCHEMISTRY, 2019, 67
  • [4] Unprecedented thermal stability of inherently metastable titanium aluminum nitride by point defect engineering
    Baben, Moritz to
    Hans, Marcus
    Primetzhofer, Daniel
    Evertz, Simon
    Ruess, Holger
    Schneider, Jochen M.
    [J]. MATERIALS RESEARCH LETTERS, 2017, 5 (03): : 158 - 169
  • [5] Chen Q, 2001, J PHASE EQUILIB, V22, P631, DOI 10.1361/105497101770332442
  • [6] Critical Assessment 5: Thermodynamic data for vacancies
    Dinsdale, A. T.
    Khvan, A. V.
    Watson, A.
    [J]. MATERIALS SCIENCE AND TECHNOLOGY, 2014, 30 (14) : 1715 - 1718
  • [7] SGTE DATA FOR PURE ELEMENTS
    DINSDALE, AT
    [J]. CALPHAD-COMPUTER COUPLING OF PHASE DIAGRAMS AND THERMOCHEMISTRY, 1991, 15 (04): : 317 - 425
  • [8] Modeling of Thermal Vacancies in Metals within the Framework of the Compound Energy Formalism
    Franke, Peter
    [J]. JOURNAL OF PHASE EQUILIBRIA AND DIFFUSION, 2014, 35 (06) : 780 - 787
  • [9] First-principles calculations for point defects in solids
    Freysoldt, Christoph
    Grabowski, Blazej
    Hickel, Tilmann
    Neugebauer, Joerg
    Kresse, Georg
    Janotti, Anderson
    Van de Walle, Chris G.
    [J]. REVIEWS OF MODERN PHYSICS, 2014, 86 (01) : 253 - 305
  • [10] The compound energy formalism: applications
    Frisk, K
    Selleby, M
    [J]. JOURNAL OF ALLOYS AND COMPOUNDS, 2001, 320 (02) : 177 - 188