TY - JOUR
T1 - An Explicit Method to Calculate the Stress Intensity Factor of Round Bar With Mode I Crack Under Arbitrary Stress Distribution
AU - Xia, Weihai
AU - Dou, Guijing
AU - Wang, Yuxuan
AU - Chen, Peijian
AU - Pu, Jian
AU - Peng, Guangjian
AU - Zhang, Taihua
N1 - Publisher Copyright:
© 2025 John Wiley & Sons Ltd.
PY - 2025/9
Y1 - 2025/9
N2 - The processing of barbs in sutures introduces cracks, reducing the fracture resistance of the barbed sutures. Obtaining stress intensity factor (SIF) is pivotal for the optimal design and safe usage of barbed sutures. In this study, an explicit method was proposed to calculate the SIFs for a barbed suture with Mode I crack under arbitrary stress distribution. The barbed suture was modeled as a round bar with different shapes of Mode I cracks. The shape coefficient, which was defined to describe the shape of crack, was computed using the point load weight function. Based on these shape coefficients, the basic stress intensity factors (BSIFs) for cracks under basic stress distributions, such as uniform, linear, and quadratic stress distributions, were determined. Then, the SIFs under arbitrary stress distributions were calculated through linear superposition of these BSIFs according to the corresponding stress distribution. The relative errors between the SIFs calculated by this method and the finite element are commonly within ± 8%. This demonstrates that the proposed explicit method is capable of directly and accurately calculating SIFs for round bars with Mode I cracks under arbitrary stress distributions, thereby avoiding the time-consuming processes of finite element analysis and numerical integration.
AB - The processing of barbs in sutures introduces cracks, reducing the fracture resistance of the barbed sutures. Obtaining stress intensity factor (SIF) is pivotal for the optimal design and safe usage of barbed sutures. In this study, an explicit method was proposed to calculate the SIFs for a barbed suture with Mode I crack under arbitrary stress distribution. The barbed suture was modeled as a round bar with different shapes of Mode I cracks. The shape coefficient, which was defined to describe the shape of crack, was computed using the point load weight function. Based on these shape coefficients, the basic stress intensity factors (BSIFs) for cracks under basic stress distributions, such as uniform, linear, and quadratic stress distributions, were determined. Then, the SIFs under arbitrary stress distributions were calculated through linear superposition of these BSIFs according to the corresponding stress distribution. The relative errors between the SIFs calculated by this method and the finite element are commonly within ± 8%. This demonstrates that the proposed explicit method is capable of directly and accurately calculating SIFs for round bars with Mode I cracks under arbitrary stress distributions, thereby avoiding the time-consuming processes of finite element analysis and numerical integration.
KW - arbitrary stress distributions
KW - round bar
KW - straight-fronted edge crack
KW - stress intensity factor
KW - weight function
UR - https://www.scopus.com/pages/publications/105008245833
U2 - 10.1111/ffe.14696
DO - 10.1111/ffe.14696
M3 - 文章
AN - SCOPUS:105008245833
SN - 8756-758X
VL - 48
SP - 3815
EP - 3828
JO - Fatigue and Fracture of Engineering Materials and Structures
JF - Fatigue and Fracture of Engineering Materials and Structures
IS - 9
ER -