Aug 2026· Materials· Vol 19· 0 citations· 32 references
Medicine
Abstract
Advanced High-Strength Steel (AHSS) exhibits stress-state-dependent competing shear–tensile fracture modes that limit the applicability of conventional ductile fracture criteria based solely on equivalent plastic strain accumulation, such as the Forming Limit Diagram (FLD) approach and the classical Gurson–Tvergaard–Needleman (GTN) model. This paper proposes an extended GTN damage model incorporating Hill’48 anisotropy and the Nahshon–Hutchinson shear mechanism, regulated by a stress-state-dependent weighting function. The experimental program comprised uniaxial tension tests for constitutive calibration, notched plate specimens with shear angles ranging from 0° to 90° (spanning pure shear to tensile–shear stress states), and tension-bending tests. The fracture initiation point was identified from the abrupt load drop on the experimental force–displacement curve and further located in the finite element simulation to extract the corresponding stress-state history. SEM fractography was employed to characterize the microscopic damage mechanisms, revealing a continuous transition from shear-dominated to void-dominated damage at a critical stress triaxiality of approximately 0.35. A weighting function dependent on both stress triaxiality and the normalized Lode angle was formulated to couple void evolution with shear band localization. Following calibration via finite element inverse fitting, the model, implemented as an ABAQUS VUMAT subroutine, successfully reproduced fracture strains and crack paths across stress states ranging from pure shear to high hydrostatic tension. Comparative simulations indicate that this approach yields improved prediction accuracy over the classical GTN model, particularly under mixed-mode conditions, thereby offering a practical numerical tool for analyzing AHSS formability.
Accurate prediction of ductile fracture in steels requires a mechanistic understanding of the evolution of microstructural voids under multiaxial loading. This work presents a mesoscale finite element framework implemented in Abaqus to characterise fracture initiation in structural steel using a representative volume e...
R. Rahnavard, H. Craveiro, L. D. da Silva· ce/papers· 0 citations
This study presents a reformulated Gurson-type peridynamic model for the numerical simulation of ductile fracture in high-strength metallic materials. The approach is built within a non-ordinary state-based peridynamics framework and tightly couples the Gurson–Tvergaard–Needleman (GTN) model at the bond level. Specific...
Li-Wei Wu, Han Wang, Jian-Feng Zhou et al.· International journal of dam...· 0 citations
Predicting compressive–shear fracture in rock masses containing complex flaw distributions remains a major challenge in rock engineering. We propose an improved non-ordinary state-based peridynamics (NOSB-PD) model to simulate rock fracture behavior in this work. A stabilized NOSB-PD formulation is developed by incorpo...
Highlights Baseline FEA framework was experimentally validated via 1 × 7 rope tensile tests. Numerical studies show geometric parameters govern load capacity and fracture modes. Simulations predict a 1.00 mm core diameter increases peak tensile force by 9.6%. Numerical models indicate that the hybrid SWR-S3 configurati...
Jing Xiao, Qi-Qi Li, Lin Hu et al.· Materials· 0 citations
Fiber-reinforced plastics (FRPs) exhibit significantly lower compressive strength than tensile strength, mainly because of fiber micro-buckling. During compressive failure, fiber micro-buckling leads to the formation of a kink band, in which fractured fibers are reoriented at a constant angle. Previous studies have sho...
Atsushi Kondo, Wataru Mikami, Yutaka Iwahori et al.· Journal of Composites Scienc...· 0 citations
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