Research on Representative Volume Element Fex-Cy High-Temperature Mechanical Model Based on Response Surface Analysis

Author:

Lyu Shining1,Gao Youshan1,Wang Aihong1,Hu Yiming1

Affiliation:

1. College of Mechanical Engineering, Taiyuan University of Science and Technology, Taiyuan 030024, China

Abstract

In this research, a multi-scale representative volume element method is introduced that combines the temperature and stress fields to analyze the force field distribution around microcracks in low-carbon steel using a combination of molecular dynamics and finite element analysis. Initially, an orthogonal experimental design was used to design the molecular dynamics simulation experiments. Next, a nano-level uniaxial tensile test model for mild steel was established based on the experimental design, and the uniaxial tensile behavior of low-carbon steel was investigated using molecular dynamics. Lastly, mathematical models of the modulus of elasticity E and yield strength Q of mild steel at a high temperature were obtained statistically using the response surface methodology. Meanwhile, a finite element model with a coupled temperature–stress field was established to investigate the force field distribution around the microscopic defects, and the microscopic crack stress concentration coefficient K was revised. The results indicate that regardless of the location of microcracks within the structure, the stress distribution due to size effects should be considered under high-temperature loading.

Funder

Shanxi Provincial Natural Science Foundation, China

Innovation Project Fund for Graduate Students of Shanxi Province, China

Research Project Supported by the Shanxi Scholarship Council of China

Innovation Project Fund for Graduate Students of Taiyuan University of Science and Technology, China

Scientific Research Project of the China Three Gorges Corporation

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science

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