Correlation of fracture parameters during onset of crack in middle tension specimen
Author(s) -
M.S. Starvin,
K.C. Ganesh,
R. Pandiyarajan
Publication year - 2017
Publication title -
journal of computational design and engineering
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.764
H-Index - 24
eISSN - 2288-5048
pISSN - 2288-4300
DOI - 10.1016/j.jcde.2017.02.002
Subject(s) - materials science , compact tension specimen , stress intensity factor , tension (geology) , finite element method , fracture (geology) , fracture mechanics , structural engineering , crack growth resistance curve , composite material , stress (linguistics) , crack closure , engineering , ultimate tensile strength , linguistics , philosophy
The present study addresses the implementation of finite element analysis and the prediction of fracture parameters in a middle tension (MT) specimen that was fabricated using AISI 4140 steel. The correlation of fracture parameters with external loads and crack sizes was investigated. A Finite Element code was developed to simulate the fracture model. The contour integral method was applied in the calculation of stress intensity factor and J-integral in the cracked specimen. The ASTM standard empirical formula was used to calculate the stress intensity factor (SIF) and the numerical predictions were validated. A standard laboratory experiment was also carried out using the MT specimen to calculate the crack growth rate in this specific material. The SIF values were almost linear with external load but it was decreasing as the crack size increases. The crack requires minimum load for crack propagation as the crack size increases. Similarly the J-integral was accelerated with increase in crack size
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