TY - JOUR
T1 - Monte Carlo simulation of polycrystalline microstructures and finite element stress analysis
AU - Liu, Yunfang
AU - Cheng, Laifei
AU - Zeng, Qingfeng
AU - Feng, Zhiqiang
AU - Zhang, Jin
AU - Peng, Junhui
AU - Xie, Congwei
AU - Guan, Kang
PY - 2014/3
Y1 - 2014/3
N2 - A two-dimensional numerical model of microstructural effects is presented, with an aim to understand the mechanical performance in polycrystalline materials. The microstructural calculations are firstly carried out on a square lattice by means of a 2-D Monte Carlo (MC) simulation for grain growth, then the conventional finite element method is applied to perform stress analysis of a plane strain problem. The mean grain size and the average stress are calculated during the MC evolution. The simulation result shows that the mean grain size increases with the simulation time, which is about 3.2 at 100 Monte Carlo step (MCS), and about 13.5 at 5000 MCS. The stress distributions are heterogeneous in materials because of the existence of grains. The mechanical property of grain boundary significantly affects the average stress. As the grains grow, the average stress without grain boundary effect slightly decreases as the simulation time, while the one with strengthening effect significantly decreases, and the one with weakening effect increases. The average stress and the grain size agree well with the Hall-Petch relationship.
AB - A two-dimensional numerical model of microstructural effects is presented, with an aim to understand the mechanical performance in polycrystalline materials. The microstructural calculations are firstly carried out on a square lattice by means of a 2-D Monte Carlo (MC) simulation for grain growth, then the conventional finite element method is applied to perform stress analysis of a plane strain problem. The mean grain size and the average stress are calculated during the MC evolution. The simulation result shows that the mean grain size increases with the simulation time, which is about 3.2 at 100 Monte Carlo step (MCS), and about 13.5 at 5000 MCS. The stress distributions are heterogeneous in materials because of the existence of grains. The mechanical property of grain boundary significantly affects the average stress. As the grains grow, the average stress without grain boundary effect slightly decreases as the simulation time, while the one with strengthening effect significantly decreases, and the one with weakening effect increases. The average stress and the grain size agree well with the Hall-Petch relationship.
KW - Finite element method
KW - Grain growth
KW - Monte Carlo simulation
KW - Polycrystalline microstructure
KW - Stress analysis
UR - http://www.scopus.com/inward/record.url?scp=84887517195&partnerID=8YFLogxK
U2 - 10.1016/j.matdes.2013.10.047
DO - 10.1016/j.matdes.2013.10.047
M3 - 文章
AN - SCOPUS:84887517195
SN - 0264-1275
VL - 55
SP - 740
EP - 746
JO - Materials and Design
JF - Materials and Design
ER -