Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
1573109 | Materials Science and Engineering: A | 2016 | 15 Pages |
Abstract
It is a significant issue to deeply understand the phase transformation kinetics and further predict the multi-phase compositions of hot stamping part with finite element method (FEM). As for BR1500HS ultra-high-strength steel, a time-temperature-transformation (TTT) test schedule from austenitizing temperature (1100 °C) to different transforming temperatures (380-750 °C) was conducted on Gleeble 3800 machine. On the basis of microstructure observations, ferrite+pearlite region (600-740 °C), bainite region (420-600 °C) and martensite region (lower than 420 °C) were distinguished. According to the acquired dilatometric curves, the starting and ending TTT curves were fitted. Subsequently, Johnson-Mehl-Avrami type kinetics equation and Magee's equation were respectively solved to describe the diffusional and non-diffusional transformation kinetics as follows: the diffusional transformation efficiency increases to a maximum value followed by a gradual decrease till 100% with time extending; the non-diffusional transformation degree gradually increases with decreasing temperature without time influence. Eventually, the multi-phase transformation kinetics were applied to the construction of the thermal-mechanical-phase dynamic coupling finite element (FE) model of hot stamping process and analysis of the multi-phase evolution and distribution in a hot stamping part. Eventually, the hot stamping process experiment was conducted and proved that the simulation results were effective.
Keywords
Related Topics
Physical Sciences and Engineering
Materials Science
Materials Science (General)
Authors
Guo-zheng Quan, Zong-yang Zhan, Le Zhang, Dong-sen Wu, Gui-chang Luo, Yu-feng Xia,