TY - JOUR
T1 - Simulation study on the fracture behavior of metallic materials subjected to short-duration electro-thermal loads
AU - Zhang, Leilei
AU - Nie, Jianxin
AU - Liu, Jupeng
AU - Yang, Lin
AU - Jin, Zhaoxin
PY - 2014/4
Y1 - 2014/4
N2 - A pre-crack metallic conductor affected by intense impulsive current and mechanical load would have a series of experimental phenomena such as crack propagation, localized melting, and cavity growth. Hence, on the basis of the fracture mechanics theory and the extended finite element method (XFEM), we proposed a numerical method for multi-physical field decoupling analysis, in which crack growth was simulated by XFEM in ABAQUS and the direct coupling and load transfer approaches were used to simulate the interaction between multi-physical fields. We applied the method to simulate the dynamic damage behavior of a specimen with pre-crack, such as crack propagation, change of temperature field on crack tip, and cavity growth. The simulation results agree with experiment results well in aspects of crack growth length and molten hole radius, verifying that the proposed numerical method is effective.
AB - A pre-crack metallic conductor affected by intense impulsive current and mechanical load would have a series of experimental phenomena such as crack propagation, localized melting, and cavity growth. Hence, on the basis of the fracture mechanics theory and the extended finite element method (XFEM), we proposed a numerical method for multi-physical field decoupling analysis, in which crack growth was simulated by XFEM in ABAQUS and the direct coupling and load transfer approaches were used to simulate the interaction between multi-physical fields. We applied the method to simulate the dynamic damage behavior of a specimen with pre-crack, such as crack propagation, change of temperature field on crack tip, and cavity growth. The simulation results agree with experiment results well in aspects of crack growth length and molten hole radius, verifying that the proposed numerical method is effective.
KW - Coupling analysis
KW - Crack propagation
KW - Extended finite element method
KW - Impulsive current
KW - Multi-physical fields
KW - Numerical simulation
UR - https://www.scopus.com/pages/publications/84900497708
U2 - 10.13336/j.1003-6520.hve.2014.04.020
DO - 10.13336/j.1003-6520.hve.2014.04.020
M3 - Article
AN - SCOPUS:84900497708
SN - 1003-6520
VL - 40
SP - 1097
EP - 1103
JO - Gaodianya Jishu/High Voltage Engineering
JF - Gaodianya Jishu/High Voltage Engineering
IS - 4
ER -