2010•Journal of Physics Conference SeriesOpen access

Deformation behavior of pure titanium at a wide range of strain rates

Yukimi Tanaka, M. Kondo, N. Miyazaki, Rintaro Ueji

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Abstract

Plastic deformation behavior of pure titanium has been investigated using a tensile test at a various range of strain rates. Flow stress curves reveal that the work hardening behavior depends on the strain rates. The higher strain rates, the more work hardening. Dislocation cell structure has been developed after the deformation at a low strain rate. At a high strain rate, in addition to that, microstructure of twinning is well evolved. Much occurrence of twinning at the high strain rate leads the pronounced work hardening.

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Plastic deformation behavior of pure titanium has been investigated using a tensile test at a various range of strain rates. Flow stress curves reveal that the work hardening behavior depends on the strain rates. The higher strain rates, the more work hardening. Dislocation cell structure has been developed after the deformation at a low strain rate. At a high strain rate, in addition to that, microstructure of twinning is well evolved. Much occurrence of twinning at the high strain rate leads the pronounced work hardening.

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Available abstract

Plastic deformation behavior of pure titanium has been investigated using a tensile test at a various range of strain rates. Flow stress curves reveal that the work hardening behavior depends on the strain rates. The higher strain rates, the more work hardening. Dislocation cell structure has been developed after the deformation at a low strain rate. At a high strain rate, in addition to that, microstructure of twinning is well evolved. Much occurrence of twinning at the high strain rate leads the pronounced work hardening.

Key concepts: Materials science, Work hardening, Crystal twinning, Strain rate, Strain hardening exponent, Composite material, Deformation (meteorology), Flow stress

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