Numerical Simulations of the Invar Effect in Fe-Ni, Fe-Pt, and Fe-Pd Ferromagnets
F. Liot, C. A. Hooley

TL;DR
This paper presents a computational scheme combining magnetism and structural calculations to simulate the Invar effect in Fe-Ni, Fe-Pt, and Fe-Pd ferromagnets, showing good qualitative agreement with experimental thermal expansion data.
Contribution
The study introduces a two-stage computational approach to model the Invar effect across different ferromagnetic alloys, unifying the analysis within a single framework.
Findings
Successfully reproduces the reduction in thermal expansion in Fe-Ni alloys near room temperature.
Qualitatively matches experimental measurements for multiple Fe-based alloys.
Demonstrates the scheme's effectiveness across different alloy compositions.
Abstract
The Invar effect in ferromagnetic Fe-Ni, Fe-Pt, and Fe-Pd alloys is investigated theoretically by means of a computationally efficient scheme. The procedure can be divided into two stages: study of magnetism and calculations of structural properties. In the first stage, an Ising model is considered and fractions of Fe moments which point up as a function of temperature are determined. In the second stage, density-functional theory calculations are performed to evaluate free energies of alloys in partially disordered local moment states as a function of lattice constant for various temperatures. Extensive tests of the scheme are carried out by comparing simulation results for thermal expansion coefficients of Fe1-xNix with x = 0.35, 0.4, ..., 0.8, Fe0.72Pt0.28, and Fe0.68Pd0.32 with measurements. The scheme is found to perform well, at least qualitatively, throughout the whole spectrum…
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Taxonomy
TopicsMagnetic Properties and Applications · Magnetic properties of thin films · Microstructure and Mechanical Properties of Steels
