TY - JOUR
T1 - Three-dimensional numerical simulations of dynamic fracture in silicon carbide reinforced aluminum
AU - Zhou, Fenghua
AU - Molinari, Jean Francois
AU - Li, Yulong
PY - 2004
Y1 - 2004
N2 - The three-point bending test by Kolsky-bar apparatus is a convenient technique to test the dynamic fracture properties of materials. This paper presents detailed three-dimensional finite element simulations of a silicon particle reinforced aluminum (SiCp/Al) experiment (Li et al., [Proceedings of the US Army Symposium on Solid Mechanics]. In the simulations, the interaction between the input bar and the specimen is modeled by coupled boundary conditions. The material model includes large plastic deformations, strain-hardening and strain-rate hardening mechanisms. Furthermore, crack initiation and propagation processes are simulated by a cohesive element model. The simulation results quantitatively agree with the experimental measurements on three fronts: (1) the structural response of the specimen, (2) the time of unstable crack propagation, and (3) the local deformations at the crack-tip zone. The simulations reveal crack propagation characteristics, including crack-tip plastic deformation, crack front curving, and crack velocity profile. The effectiveness of Kolsky-bar type fracture tests is verified. It is shown that a rate-independent cohesive model can describe the complicated dynamic elastic-plastic fracture process in the SiCp/Al material.
AB - The three-point bending test by Kolsky-bar apparatus is a convenient technique to test the dynamic fracture properties of materials. This paper presents detailed three-dimensional finite element simulations of a silicon particle reinforced aluminum (SiCp/Al) experiment (Li et al., [Proceedings of the US Army Symposium on Solid Mechanics]. In the simulations, the interaction between the input bar and the specimen is modeled by coupled boundary conditions. The material model includes large plastic deformations, strain-hardening and strain-rate hardening mechanisms. Furthermore, crack initiation and propagation processes are simulated by a cohesive element model. The simulation results quantitatively agree with the experimental measurements on three fronts: (1) the structural response of the specimen, (2) the time of unstable crack propagation, and (3) the local deformations at the crack-tip zone. The simulations reveal crack propagation characteristics, including crack-tip plastic deformation, crack front curving, and crack velocity profile. The effectiveness of Kolsky-bar type fracture tests is verified. It is shown that a rate-independent cohesive model can describe the complicated dynamic elastic-plastic fracture process in the SiCp/Al material.
KW - Cohesive element
KW - Crack propagation
KW - Dynamic fracture
KW - Numerical simulation
UR - http://www.scopus.com/inward/record.url?scp=1142305348&partnerID=8YFLogxK
U2 - 10.1016/S0013-7944(03)00168-1
DO - 10.1016/S0013-7944(03)00168-1
M3 - 文章
AN - SCOPUS:1142305348
SN - 0013-7944
VL - 71
SP - 1357
EP - 1378
JO - Engineering Fracture Mechanics
JF - Engineering Fracture Mechanics
IS - 9-10
ER -