Title of article :
Numerical prediction of fracture in the Taylor test
Author/Authors :
Z. X. Teng، نويسنده , , T. Wierzbicki ، نويسنده , , S. Hiermaier، نويسنده , , I. Rohr، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2005
Abstract :
A flat-nosed cylinder moving at a sufficiently high impact velocity in the classical Taylor test will always fracture. In
this paper, fracture phenomena and fracture mechanisms in the Taylor test are investigated numerically based on a
recently developed ductile fracture locus with the cut-off value for the negative stress triaxiality at 1/3. The impact
velocity of the projectile ranges from 240m/s to 600m/s. The lower velocity is applied to a less ductile 2024-T351 aluminum
alloy cylinder while the higher velocity is introduced for more ductile Weldox 460 E steel. Three distinct fracture
modes are recreated numerically: the confined fracture inside the cylinder, the shear cracking on the lateral surface, and
the petalling, all of which are consistent with experimental results presented in the open literature. It is found that a
more ductile cylinder tends to fail by petalling while a less ductile one by shear cracking. Confined fracture is a common
failure mode for both materials, which occurs in a wide range of the impact velocity. The ductile fracture criterion with
the cut-off value predicts realistic fracture patterns for short cylinders deforming predominantly under compression.
Keywords :
Taylor test , Ductile fracture criterion , Petalling , Shear cracking , Confined fracture
Journal title :
International Journal of Solids and Structures
Journal title :
International Journal of Solids and Structures