Thermodynamic and kinetic properties of Fe-Cr and TiC-ZrC alloys from Density Functional Theory

The complete and accurate thermodynamic and kinetic description of any systemis crucialfor understanding and predicting its properties. A particular interest is in systemsthat are used for some practical applications and have to be constantly improved usingmodification of their composition and struc...

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Main Author: Razumovskiy, Vsevolod
Format: Doctoral Thesis
Language:English
Published: KTH, Materialteknologi 2012
Subjects:
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-96285
http://nbn-resolving.de/urn:isbn:978-91-7501-340-4
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spelling ndltd-UPSALLA1-oai-DiVA.org-kth-962852013-04-02T16:29:16ZThermodynamic and kinetic properties of Fe-Cr and TiC-ZrC alloys from Density Functional TheoryengRazumovskiy, VsevolodKTH, MaterialteknologiKTH, VinnExcellence Center för Hierarkisk design av Industriella Material, HERO-MStockholm2012ab initiofirst principlespoint defectsvacancy clustersalloyssteelsironcarbidesdiffusionphase diagramdensity functional theoryelastic constantselastic propertiesthermodynamic modellingThe complete and accurate thermodynamic and kinetic description of any systemis crucialfor understanding and predicting its properties. A particular interest is in systemsthat are used for some practical applications and have to be constantly improved usingmodification of their composition and structure. This task can be quite accuratelysolved at a fundamental level by density functional theory methods. Thesemethods areapplied to two practically important systems Fe-Cr and TiC-ZrC.The elastic properties of pure iron and substitutionally disordered Fe-Cr alloy are investigatedas a function of temperature and concentration using first-principles electronicstructurecalculations by the exact muffin-tin orbitals method. The temperature effectson the elastic properties are included via the electronic, magnetic, and lattice expansioncontributions. It is shown that the degree of magnetic order in both pure iron andFe90Cr10 alloy mainly determines the dramatic change of the elastic anisotropy of thesematerials at elevated temperatures. A peculiarity in the concentration dependence ofthe elastic constants in Fe-rich alloys is demonstrated and related to a change in theFermi surface topology.A thermodynamic model for the magnetic alloys is developed from first principles andapplied to the calculation of bcc Fe-Cr phase diagram. Various contributions to the freeenergy (magnetic, electronic, and phonon) are estimated and included in the model. Inparticular, it is found that magnetic short range order effects are important just abovethe Curie temperature. The model is applied for calculating phase equilibria in disorderedbcc Fe-Cr alloys. Model calculations reproduce a feature known as a Nishizawahorn for the Fe-rich high-temperature part of the phase diagram.The investigation of the TiC-ZrC system includes a detailed study of the defect formationenergies and migration barriers of point defects and defect complexes involvedin the diffusion process. It is found, using ab initio atomistic simulations of vacancymediateddiffusion processes in TiC and ZrC, that a special self-diffusion mechanism isoperative for metal atom diffusion in sub-stoichiometric carbides. It involves a noveltype of a stable point defect, a metal vacancy ”dressed” in a shell of carbon vacancies.It is shown that this vacancy cluster is strongly bound and can propagate through thelattice without dissociating. <p>QC 20120604</p>HERO-MDoctoral thesis, comprehensive summaryinfo:eu-repo/semantics/doctoralThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-96285urn:isbn:978-91-7501-340-4application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Doctoral Thesis
sources NDLTD
topic ab initio
first principles
point defects
vacancy clusters
alloys
steels
iron
carbides
diffusion
phase diagram
density functional theory
elastic constants
elastic properties
thermodynamic modelling
spellingShingle ab initio
first principles
point defects
vacancy clusters
alloys
steels
iron
carbides
diffusion
phase diagram
density functional theory
elastic constants
elastic properties
thermodynamic modelling
Razumovskiy, Vsevolod
Thermodynamic and kinetic properties of Fe-Cr and TiC-ZrC alloys from Density Functional Theory
description The complete and accurate thermodynamic and kinetic description of any systemis crucialfor understanding and predicting its properties. A particular interest is in systemsthat are used for some practical applications and have to be constantly improved usingmodification of their composition and structure. This task can be quite accuratelysolved at a fundamental level by density functional theory methods. Thesemethods areapplied to two practically important systems Fe-Cr and TiC-ZrC.The elastic properties of pure iron and substitutionally disordered Fe-Cr alloy are investigatedas a function of temperature and concentration using first-principles electronicstructurecalculations by the exact muffin-tin orbitals method. The temperature effectson the elastic properties are included via the electronic, magnetic, and lattice expansioncontributions. It is shown that the degree of magnetic order in both pure iron andFe90Cr10 alloy mainly determines the dramatic change of the elastic anisotropy of thesematerials at elevated temperatures. A peculiarity in the concentration dependence ofthe elastic constants in Fe-rich alloys is demonstrated and related to a change in theFermi surface topology.A thermodynamic model for the magnetic alloys is developed from first principles andapplied to the calculation of bcc Fe-Cr phase diagram. Various contributions to the freeenergy (magnetic, electronic, and phonon) are estimated and included in the model. Inparticular, it is found that magnetic short range order effects are important just abovethe Curie temperature. The model is applied for calculating phase equilibria in disorderedbcc Fe-Cr alloys. Model calculations reproduce a feature known as a Nishizawahorn for the Fe-rich high-temperature part of the phase diagram.The investigation of the TiC-ZrC system includes a detailed study of the defect formationenergies and migration barriers of point defects and defect complexes involvedin the diffusion process. It is found, using ab initio atomistic simulations of vacancymediateddiffusion processes in TiC and ZrC, that a special self-diffusion mechanism isoperative for metal atom diffusion in sub-stoichiometric carbides. It involves a noveltype of a stable point defect, a metal vacancy ”dressed” in a shell of carbon vacancies.It is shown that this vacancy cluster is strongly bound and can propagate through thelattice without dissociating. === <p>QC 20120604</p> === HERO-M
author Razumovskiy, Vsevolod
author_facet Razumovskiy, Vsevolod
author_sort Razumovskiy, Vsevolod
title Thermodynamic and kinetic properties of Fe-Cr and TiC-ZrC alloys from Density Functional Theory
title_short Thermodynamic and kinetic properties of Fe-Cr and TiC-ZrC alloys from Density Functional Theory
title_full Thermodynamic and kinetic properties of Fe-Cr and TiC-ZrC alloys from Density Functional Theory
title_fullStr Thermodynamic and kinetic properties of Fe-Cr and TiC-ZrC alloys from Density Functional Theory
title_full_unstemmed Thermodynamic and kinetic properties of Fe-Cr and TiC-ZrC alloys from Density Functional Theory
title_sort thermodynamic and kinetic properties of fe-cr and tic-zrc alloys from density functional theory
publisher KTH, Materialteknologi
publishDate 2012
url http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-96285
http://nbn-resolving.de/urn:isbn:978-91-7501-340-4
work_keys_str_mv AT razumovskiyvsevolod thermodynamicandkineticpropertiesoffecrandticzrcalloysfromdensityfunctionaltheory
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