Development of the RF-MEAM Interatomic Potential for the Fe-C System to Study the Temperature-Dependent Elastic Properties

Author:

Risal Sandesh1ORCID,Singh Navdeep2,Duff Andrew Ian3ORCID,Yao Yan45,Sun Li1,Risal Samprash4,Zhu Weihang16ORCID

Affiliation:

1. Department of Mechanical Engineering, University of Houston, Houston, TX 77204, USA

2. Department of Mechanical Engineering, School of Engineering and Computer Science, University of the Pacific, Stockton, CA 95211, USA

3. Scientific Computing Department, STFC Daresbury Laboratory, Warrington WA4 4AD, UK

4. Materials Science and Engineering Program, University of Houston, Houston, TX 77204, USA

5. Department of Electrical and Computer Engineering, University of Houston, Houston, TX 77204, USA

6. Department of Engineering Technology, University of Houston, Houston, TX 77204, USA

Abstract

One of the major impediments to the computational investigation and design of complex alloys such as steel is the lack of effective and versatile interatomic potentials to perform large-scale calculations. In this study, we developed an RF-MEAM potential for the iron-carbon (Fe-C) system to predict the elastic properties at elevated temperatures. Several potentials were produced by fitting potential parameters to the various datasets containing forces, energies, and stress tensor data generated using density functional theory (DFT) calculations. The potentials were then evaluated using a two-step filter process. In the first step, the optimized RSME error function of the potential fitting code, MEAMfit, was used as the selection criterion. In the second step, molecular dynamics (MD) calculations were employed to calculate ground-state elastic properties of structures present in the training set of the data fitting process. The calculated single crystal and poly-crystalline elastic constants for various Fe-C structures were compared with the DFT and experimental results. The resulting best potential accurately predicted the ground state elastic properties of B1, cementite, and orthorhombic-Fe7C3 (O-Fe7C3), and also calculated the phonon spectra in good agreement with the DFT-calculated ones for cementite and O-Fe7C3. Furthermore, the potential was used to successfully predict the elastic properties of interstitial Fe-C alloys (FeC-0.2% and FeC-0.4%) and O-Fe7C3 at elevated temperatures. The results were in good agreement with the published literature. The successful prediction of elevated temperature properties of structures not included in data fitting validated the potential’s ability to model elevated-temperature elastic properties.

Funder

University of Houston (UH) HPE Data Science Institute, National Science Foundation

National Academy of Sciences, Engineering, and Medicine

U.S. Department of Agriculture

UH Advanced Manufacturing Institute

Publisher

MDPI AG

Subject

General Materials Science

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