Title of article :
Damage evolution in Ti6Al4V–Al3Ti metal-intermetallic laminate composites
Author/Authors :
Li، نويسنده , , Tiezheng and Jiang، نويسنده , , Fengchun and Olevsky، نويسنده , , Eugene A. and Vecchio، نويسنده , , Kenneth S. and Meyers، نويسنده , , Marc A.، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2007
Abstract :
The crack propagation and damage evolution in metal (Ti6Al4V)-intermetallic (Al3Ti) laminate composites were investigated. The composites (volume fractions of Ti6Al4V: 14%, 20% and 35%) were tested under different loading directions (perpendicular and parallel directions to laminate plane), to different strains (1%, 2%, 3%) and at different strain rates (0.0001 and 800–2000 s−1). Crack densities and distributions were measured. The crack density increases with increasing strain, but decreases (at a constant strain) with increasing volume fraction of Ti6Al4V. Differences in crack propagation and damage evolution in MIL composites under quasi-static (10−4 s−1) and dynamic (800–2000 s−1) deformation were observed. The fracture stress does not exhibit significant strain-rate sensitivity; this is indicative of the dominance of microcracking processes in determining strength. Generally, the crack density after dynamic deformation is higher than that after quasi-static deformation. This is attributed to the decreased time for crack interaction in high-strain rate deformation. The effect of crack density, as quantified by a damage parameter, on elastic modulus and stress–strain relation were calculated and compared with experimental results.
Keywords :
laminate composites , Mechanical Behavior , damage evolution , Crack density
Journal title :
MATERIALS SCIENCE & ENGINEERING: A
Journal title :
MATERIALS SCIENCE & ENGINEERING: A