TY - JOUR
T1 - Extended finite element method analysis for shielding and amplification effect of a main crack interacted with a group of nearby parallel microcracks
AU - Wang, Heng
AU - Liu, Zhanli
AU - Xu, Dandan
AU - Zeng, Qinglei
AU - Zhuang, Zhuo
AU - Chen, Z.
N1 - Publisher Copyright:
© SAGE Publications.
PY - 2016/1/1
Y1 - 2016/1/1
N2 - The shielding and amplification effects of transverse array of microcracks on a main crack are investigated using extended finite element method. The interaction between macrocracks and microcracks is quantitatively characterized in terms of the stress intensity factor which is calculated by the interaction integral method and the complete stress field in the entire domain could be given without remeshing. Various distributions of microcracks with different number, location, and density are considered. For a microcrack collinear to the main crack, the numerical results agree quite well with the analytical solution. Interestingly, the shielding and amplification effects display periodicity when the main crack is placed inside the microcrack rows. In particular, the minimum stress intensity factor of the main crack which refers to the maximum shielding effect is primarily determined by the nearest microcracks. However, the maximum stress intensity factor is largely affected by the distribution and density of microcracks and even could be turned from enhancement to shielding. The results are consistent with the microcrack-toughening phenomenon observed in the experiments and are meaningful for the design of new microstructure-toughening materials.
AB - The shielding and amplification effects of transverse array of microcracks on a main crack are investigated using extended finite element method. The interaction between macrocracks and microcracks is quantitatively characterized in terms of the stress intensity factor which is calculated by the interaction integral method and the complete stress field in the entire domain could be given without remeshing. Various distributions of microcracks with different number, location, and density are considered. For a microcrack collinear to the main crack, the numerical results agree quite well with the analytical solution. Interestingly, the shielding and amplification effects display periodicity when the main crack is placed inside the microcrack rows. In particular, the minimum stress intensity factor of the main crack which refers to the maximum shielding effect is primarily determined by the nearest microcracks. However, the maximum stress intensity factor is largely affected by the distribution and density of microcracks and even could be turned from enhancement to shielding. The results are consistent with the microcrack-toughening phenomenon observed in the experiments and are meaningful for the design of new microstructure-toughening materials.
KW - crack amplification effect
KW - Crack interaction
KW - crack shielding effect
KW - extended finite element method
UR - http://www.scopus.com/inward/record.url?scp=84949666546&partnerID=8YFLogxK
U2 - 10.1177/1056789514565933
DO - 10.1177/1056789514565933
M3 - Article
AN - SCOPUS:84949666546
SN - 1056-7895
VL - 25
SP - 4
EP - 25
JO - International Journal of Damage Mechanics
JF - International Journal of Damage Mechanics
IS - 1
ER -