TY - JOUR
T1 - 3-D constraint effects on J testing and crack tip constraint in M(T), SE(B), SE(T) and C(T) specimens
T2 - Numerical study
AU - Kim, Yun Jae
AU - Kim, Jin Su
AU - Cho, Soo Man
AU - Kim, Young Jin
PY - 2004
Y1 - 2004
N2 - This paper compiles solutions of plastic η factors and crack tip stress triaxialites for standard and non-standard fracture toughness testing specimens, via detailed three-dimensional (3-D) finite element (FE) analyses. Fracture toughness testing specimens studied include a middle cracked tension (M(T)) specimen, SE(B), single-edge cracked bar in tension (SE(T)) and C(T) specimen. The ligament-to-thickness ratio of the specimen is systematically varied. It is found that the use of the CMOD overall provides more robust experimental J estimation than that of the LLD, for all cases considered in the present work. Moreover, the J estimation based on the load-CMOD record is shown to be insensitive to the specimen thickness, and thus can be used for testing a specimen with any thickness. Furthermore, effects of in-plane and out-of-plane constraint on the crack tip stress triaxiality are quantified, so that when an experimental J value is estimated according to the procedure recommended in this paper, the corresponding crack tip stress triaxiality can be estimated. Moreover, it is found that the out-of-plane constraint effect is related to the in-plane constraint effect.
AB - This paper compiles solutions of plastic η factors and crack tip stress triaxialites for standard and non-standard fracture toughness testing specimens, via detailed three-dimensional (3-D) finite element (FE) analyses. Fracture toughness testing specimens studied include a middle cracked tension (M(T)) specimen, SE(B), single-edge cracked bar in tension (SE(T)) and C(T) specimen. The ligament-to-thickness ratio of the specimen is systematically varied. It is found that the use of the CMOD overall provides more robust experimental J estimation than that of the LLD, for all cases considered in the present work. Moreover, the J estimation based on the load-CMOD record is shown to be insensitive to the specimen thickness, and thus can be used for testing a specimen with any thickness. Furthermore, effects of in-plane and out-of-plane constraint on the crack tip stress triaxiality are quantified, so that when an experimental J value is estimated according to the procedure recommended in this paper, the corresponding crack tip stress triaxiality can be estimated. Moreover, it is found that the out-of-plane constraint effect is related to the in-plane constraint effect.
KW - Crack tip constraint
KW - Finite element analysis
KW - J-integral
KW - Plastic η factor
KW - Thickness effect
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U2 - 10.1016/S0013-7944(03)00211-X
DO - 10.1016/S0013-7944(03)00211-X
M3 - Article
AN - SCOPUS:1142268971
SN - 0013-7944
VL - 71
SP - 1203
EP - 1218
JO - Engineering Fracture Mechanics
JF - Engineering Fracture Mechanics
IS - 9-10
ER -