Title of article :
Dynamic brittle fracture of high strength structuralsteels underconditions of plane strain
Author/Authors :
Youngseog Lee، نويسنده , , Vikas Prakash، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 1999
Abstract :
A transient _nite element analysis is carried out to provide a perspective on dynamic fracture models
incorporating the decohesion of fracture surfaces\ with a focus on improved modeling and understanding
quantitative features of dynamically propagating cracks under intense stress pulse loading[ The problem
analyzed here is plane!strain fracture of an edge cracked specimen under plane wave loading conditions[ In
order to ascertain the validity of the various cohesive surface fracture models\ the results of the FEM
simulations are compared with experimental observations made during the low temperature\ plate!impact
fracture experiments on 3239VAR steel "199>C temper\ Rc 44#[ The _nite element analysis is carried out
within a framework where the continuum is characterized by two constitutive relations^ one that relates
stress and strain in the bulk material\ the other relates the traction and separation across a speci_ed set of
cohesive surfaces[ The bulk material is characterized as an isotropically hardening and thermally softening
elastic viscoplastic von Mises solid[ The _nite element formulation employed\ accounts for the e}ects of
_nite geometry changes\ material inertia\ and heat conduction[ Crack initiation and crack growth emerge
naturally as outcomes of the imposed loading\ and are calculated directly in terms of the material|s consti!
tutive parameters and the parameters characterizing the cohesive surface separation law[ From the results
of these simulations it is observed that the cohesive surface model\ which incudes a cohesive surface strength
and a characteristic length is not capable of predicting the dynamic crack growth observed in the experiments[
However\ the computed results are observed to be in good agreement with the experimental results when
the work of separation per unit area appearing in the cohesive surface separating law\ includes a cohesive!
surface separation rate dependent cohesive strength[ Moreover\ the computational results emphasize the
existence of a sharp upturn in dynamic fracture toughness in high strength structural steels at a material
characteristic limiting crack tip speed even at test temperatures as low as 79>C and under ultra high crack
tip loading rates "K I 097 MPazm:s#[
Journal title :
International Journal of Solids and Structures
Journal title :
International Journal of Solids and Structures