TY - JOUR
T1 - Thermo-mechanlcal modeling and analysis of equal channel angular pressing
AU - Pei, Q. X.
AU - Hu, B. H.
AU - Lu, C.
PY - 2005
Y1 - 2005
N2 - Thermo-mechanical finite element analysis was carried out to study the deformation behavior and temperature distribution during equal channel angular pressing (ECAP). The material model used is the Johnson-Cook constitution model that can consider the multiplication effect of strain, strain rate, and temperature on the flow stress. The effects of pressing speed, pressing temperature, workpiece material and die geometry on the temperature rise and flow behavior during ECAP process were investigated. The simulated temperature rise due to deformation heating was compared with published experimental results and a good agreement was obtained. Among the various die geometries studied, the two-turn die with 0° round corner generates the highest and most uniform plastic strain in the workpiece.
AB - Thermo-mechanical finite element analysis was carried out to study the deformation behavior and temperature distribution during equal channel angular pressing (ECAP). The material model used is the Johnson-Cook constitution model that can consider the multiplication effect of strain, strain rate, and temperature on the flow stress. The effects of pressing speed, pressing temperature, workpiece material and die geometry on the temperature rise and flow behavior during ECAP process were investigated. The simulated temperature rise due to deformation heating was compared with published experimental results and a good agreement was obtained. Among the various die geometries studied, the two-turn die with 0° round corner generates the highest and most uniform plastic strain in the workpiece.
KW - Deformation Behaviour
KW - Equal Channel Angular Pressing (ECAP)
KW - Temperature Rise
KW - Thermo-Mechanical Analysis
UR - https://www.scopus.com/pages/publications/12344298660
U2 - 10.4028/www.scientific.net/JMNM.23.263
DO - 10.4028/www.scientific.net/JMNM.23.263
M3 - 文章
AN - SCOPUS:12344298660
SN - 1422-6375
VL - 23
SP - 263
EP - 266
JO - Journal of Metastable and Nanocrystalline Materials
JF - Journal of Metastable and Nanocrystalline Materials
ER -