Application of the Cluster/site Approximation to Calculation of Multicomponent Alloy Phase Diagrams and Coherent Interphase Energies

Application of the Cluster/site Approximation to Calculation of Multicomponent Alloy Phase Diagrams and Coherent Interphase Energies PDF Author: Weisheng Cao
Publisher:
ISBN:
Category :
Languages : en
Pages : 224

Get Book Here

Book Description


Calculations of Alloy Phases with a Direct Monte-Carlo Method

Calculations of Alloy Phases with a Direct Monte-Carlo Method PDF Author:
Publisher:
ISBN:
Category :
Languages : en
Pages : 9

Get Book Here

Book Description
A method for calculating the boundaries that describe solid-solid phase transformations in the phase diagrams of alloys is described. The method is first-principles in the sense that the only input is the atomic numbers of the constituents. It proceeds from the observation that the crux of the Monte-Carlo method for obtaining the equilibrium distribution of atoms in an alloy is a calculation of the energy required to replace an A atom on site i with a B atom when the configuration of the atoms on the neighboring sites,?, is specified,?H{sub?}(A→B) = E{sub B}? -E{sub A}{kappa}. Normally, this energy difference is obtained by introducing interatomic potentials, v{sub ij}, into an Ising Hamiltonian, but the authors calculate it using the embedded cluster method (ECM). In the ECM an A or B atom is placed at the center of a cluster of atoms with the specified configuration K, and the atoms on all the other sites in the alloy are simulated by the effective scattering matrix obtained from the coherent potential approximation. The interchange energy is calculated directly from the electronic structure of the cluster. The table of?H{sub {kappa}}(A→B)s̀ for all configurations K and several alloy concentrations is used in a Monte Carlo calculation that predicts the phase of the alloy at any temperature and concentration. The detailed shape of the miscibility gaps in the palladium-rhodium and copper-nickel alloy systems are shown.

Statics and Dynamics of Alloy Phase Transformations

Statics and Dynamics of Alloy Phase Transformations PDF Author: Patrice E. A. Turchi
Publisher: Springer Science & Business Media
ISBN: 9780306446269
Category : Science
Languages : en
Pages : 764

Get Book Here

Book Description
The proceedings of the NATO Advanced Study Institute on title], held in Rhodes, Greece, June-July 1992, comprise invited and contributed papers that focus on recent experimental, theoretical, and computational developments in the study of phase alloy transformations. The coverage is in three parts:

First-principles Calculations of Thermodynamic Properties and Phase Diagrams of Binary Substitutional Alloys

First-principles Calculations of Thermodynamic Properties and Phase Diagrams of Binary Substitutional Alloys PDF Author: Mark David Asta
Publisher:
ISBN:
Category :
Languages : en
Pages : 526

Get Book Here

Book Description


Unique Cluster Expansion for Reliable First-principles Prediction of Alloy Thermodynamics and Phase Diagrams

Unique Cluster Expansion for Reliable First-principles Prediction of Alloy Thermodynamics and Phase Diagrams PDF Author: Teck L. Tan
Publisher:
ISBN:
Category :
Languages : en
Pages :

Get Book Here

Book Description
A theoretical multi-scale approach based on the cluster expansion (CE) has been developed to aid materials design and discovery for scientific and engineering applications. Using structural energies from first-principles electronic theory, an effective (CE) Hamiltonian that is suitable for large scale systems is constructed, enabling the calculation of thermodynamic quantities and prediction of phase diagrams. The CE Hamiltonian is expanded in terms of correlation functions of all geometric cluster entities on a fixed lattice, forming a basis set that spans the entire alloy configuration space on the lattice. The coefficients in the CE are the system's effective cluster interactions (ECI), which are physically well-defined and have unique values for each alloy system. Yet the CE is useful only when the ECI are truncated, permitting the ECI to be obtained from known energies in a configuration subspace. Such ECI are biased by those ECI not in the truncated set, because when projected onto an arbitrarily selected subspace (by truncation), linear dependencies exist between cluster functions. The dependencies are overlooked in current methods, resulting in non-unique truncated CE sets that are extracted from an unnecessarily large number of first-principles data. In fact, the CE is directly related to the well-studied Walsh transformation and the Hadamard matrices, whose properties are utilized in fractional factorial design principles (also known as Design of Experiment) to evaluate reliably the variables from only a selected subset of known data. Via these concepts, we develop a systematic choice of configuration subspaces that identify clearly the linear dependencies, allowing a unique truncation of CE that keeps the critical ECI. These concepts lead to the subspace projection (SSP) method, which gives a physically and mathematically sound approach to select a unique alloy CE via structural inversion (SI), starting from a subset of known energies evaluated from first-principles methods such as Density Functional Theory (DFT). In contrast, current methods for optimally truncated CE set are based on some "chosen" statistical measure of predictive capability of structural energies. This leads to non-unique truncated CE sets, although the issue, as we had shown, is partially addressed when the CE basis is enforced to be compact and locally complete. The theoretical methods we proposed were implemented in the Thermodynamics Toolkit (TTK). We use TTK to construct a CE for various phase-segregating and ordering alloys via SI, using DFT-determined structural energies from a selected set of ordered structures as input. The optimal CE set is used in Monte Carlo (MC) simulations and/or mean-field theories (MFTs) to construct temperature-composition phase diagrams for FCC Ca-Sr, Pd-Rh and Ag-Au (ordering), explaining various features and comparing them to available experiment data. The ECI of Ag-Au system also compare well to those extracted directly from the DFT electronic charge density at the dilute limit, elucidating their electronic structure origins. We also use our SSP method to construct a CE for Ag-Au to illustrate how critical ECI become systematically linearly independent with augmentation of configuration subspaces. Importantly, with only one-third the number of DFT structural energies to extract ECI, we achieve a unique and physical set of ECI via SSP, significantly reducing the amount of computational effort required. Lastly, a cluster-based MFT, generalized to arbitrary cluster sizes, is introduced to serve as a quick and reliable way to calculate phase diagram. Via a cluster-lattice Fourier transform, the cluster MFT obeys self-consistent relations between cluster and coarse-grained lattice correlations. Already with a single-site cluster, the proposed MFT results in topologically correct phase diagrams for Ising models on frustrated systems, which traditional MFTs fail to achieve. Phase transition temperatures from MC and series expansion are recovered upon finite-size scaling. Together these techniques permit a rapid, unique and reliable approach to materials characterization, design and discovery. In the future we will apply these novel methods and tool to more complex alloy systems.

Advances in the Multi-scale Computational Design of Condensed Matter Interfaces

Advances in the Multi-scale Computational Design of Condensed Matter Interfaces PDF Author: Heike Emmerich
Publisher:
ISBN:
Category : Computer-aided design
Languages : en
Pages : 220

Get Book Here

Book Description


The Calculation of Multicomponent Alloy Phase Diagrams at the National Physical Laboratory

The Calculation of Multicomponent Alloy Phase Diagrams at the National Physical Laboratory PDF Author: T. G. Chart
Publisher:
ISBN:
Category :
Languages : en
Pages : 7

Get Book Here

Book Description


Selected Systems from Cu-Fe-Si to Fe-N-U

Selected Systems from Cu-Fe-Si to Fe-N-U PDF Author: Günter Effenberg
Publisher: Springer Science & Business Media
ISBN: 3540786430
Category : Science
Languages : en
Pages : 553

Get Book Here

Book Description
Volume 11 of group IV presents phase diagrams, crystallographic and thermodynamic data of ternary alloy systems. It is a standard reference book with easily retrievable data from the fields of physics and chemistry collected by acknowledged scientists.

The NPL Alloy Data Bank and Its Use in the Calculation of Multicomponent Alloy Phase Diagrams

The NPL Alloy Data Bank and Its Use in the Calculation of Multicomponent Alloy Phase Diagrams PDF Author: A. T. Dinsdale
Publisher:
ISBN:
Category :
Languages : en
Pages : 37

Get Book Here

Book Description


User Applications of Alloy Phase Diagrams

User Applications of Alloy Phase Diagrams PDF Author: Larry Kaufman
Publisher: Asm International
ISBN: 9780871702944
Category : Technology & Engineering
Languages : en
Pages : 261

Get Book Here

Book Description