Developing reliable machine learning interatomic potential for Fe–Cr–Ni austenitic alloys

S Shiqiang Hao (Department of Materials Science and Engineering) P Prashant Singh (Ames National Laboratory) A A. V. Smirnov (Ames National Laboratory 3 , 2416 Pammel Drive, Ames, Iowa 50011,) D Duane D. Johnson (Ames National Laboratory) D David E. Alman (National Energy Technology Laboratory 1 , 1450 Queen Avenue SW, Albany, Oregon 97321,) M Michael C. Gao (National Energy Technology Laboratory 1 , 1450 Queen Avenue SW, Albany, Oregon 97321,)

Abstract

Gaining atomistic understanding of mechanical behavior of heat-resistant structural materials such as Fe–Cr–Ni-based alloys requires an approach with an accuracy close to density functional theory (DFT) that considers the intrinsic properties of the bulk lattice and important defects such as stacking faults, grain boundaries, and surfaces. This work aims to develop reliable machine learning interatomic potential (MLIAP) at cross-scale for Fe–Cr–Ni ternary alloys with a focus on the face-centered-cubic (fcc) solid solution structure. Leveraging the advantages of moment tensor potentials, which typically necessitate a relatively small training dataset and enable rapid calculations using the large-scale atomic/molecular massively parallel simulator package, we ensure the stability and accuracy of the trained potentials. Important defects such as stacking faults, grain boundaries, and surfaces for wide-range compositions are investigated. Structural, thermal, elastic, and defect properties are determined from molecular dynamics simulations comprising several thousand atoms, generated via canonical Monte Carlo simulations guided by the trained potential. The trained potential allows efficient atomic simulations of structural, thermal, and mechanical properties of fcc Fe–Cr–Ni solid solution alloys as a function of composition and temperature. Therefore, the MLIAP approach represents a major advancement from DFT calculations that are limited to small simulation sizes and traditional molecular dynamics simulations using relatively low accuracy potentials. Furthermore, this work outlines a practical foundation for further investigating the structural evolution and mechanical behavior of austenitic stainless steel and nickel-based alloys in a wide array of applications in extreme environments.

Article Details

Volume / Issue Vol. 138, Issue 8
Published August 28, 2025
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (6)

S

Shiqiang Hao

Department of Materials Science and Engineering

P

Prashant Singh

Ames National Laboratory

A

A. V. Smirnov

Ames National Laboratory 3 , 2416 Pammel Drive, Ames, Iowa 50011,

D

Duane D. Johnson

Ames National Laboratory

D

David E. Alman

National Energy Technology Laboratory 1 , 1450 Queen Avenue SW, Albany, Oregon 97321,

M

Michael C. Gao

National Energy Technology Laboratory 1 , 1450 Queen Avenue SW, Albany, Oregon 97321,