Experimental Measurements and Numerical Prediction of Rupture in Ductile Material during Mechanical Testing
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Abstract
Rupture is a term associated to fracture. Rupture is one of the most notable phenomena that
newlinedominates failure mode in manufacturing method. In metal forming procedures, rupture is
newlinevital to predict for avoiding failure of material. To determine the prediction, basic mechanical
newlinetests are needed to perform. Nowadays, numerical validation is generally used to assess
newlinerupture in manufacturing process. In this thesis, the work has been done on prediction of
newlinerupture during tensile and shear tests of widely used material i.e., SS304 stainless steel sheet.
newlineThe strain histories up to rupture during tensile test experiments was recorded by means of
newlineextensometer and digital image correlation (DIC) arrangement. The numerical simulation was
newlinedone on the base of investigational results obtained from the tensile tests. Four macroscopic
newlinerupture criteria were used to predict the rupture during numerical simulations. The loaddisplacement curve attained from numerical simulation and experimental results of tensile
newlinetest is used to check homogeneity of methodology, which showed good agreement between
newlinethem. The critical values of damage factor were estimated using macroscopic criteria, further
newlinethese values are used to stop the numerical simulation of shear test. These critical values of
newlinedamage factor are unique for each mechanical test, which indicates the onset of rupture. The
newlineshear test was simulated using ABAQUS/Standard to look into rupture and compare local
newlinestrains with DIC studies. To study the properties of the stress state on plasticity and shear
newlinerupture, a sample based on ASTM B831 was created. Based on the results, the most suitable
newline