4.7 Article

Dynamic behavior and adiabatic shearing formation of the commercially pure titanium with explosion-induced gradient microstructure

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.msea.2021.142340

关键词

Titanium alloy; Gradient microstructure; Explosion hardening; Dynamic behavior; Adiabatic shear band; Gradient deformation

资金

  1. National Natural Science Foundation of China [11472054, 12072038, 12102400]
  2. State Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology, China [ZDKT18-01]

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In this study, commercially pure titanium was subjected to explosion hardening to create a gradient microstructure. The results showed that explosion hardening induced a gradient hardened microstructure in CP titanium and enhanced both static and dynamic compressive strengths. The gradient deformation and adiabatic shear band were observed in the explosion hardened specimen after dynamic loading, while the untreated specimen showed homogeneous deformation and a bipyramid-shaped adiabatic shear band. The gradient microstructure in CP titanium with explosion hardening delayed the propagation of adiabatic shear bands (ASBs) and cracks under dynamic loading.
The commercially pure (CP) titanium has been processed by explosion hardening to produce a gradient microstructure. The hardness distribution of CP titanium after explosion hardening was measured. The microstructure of explosion hardened CP titanium was revealed by transmission electron microscopy and optical microscopy. The split Hopkinson pressure bar was used to study the effect of explosion hardening on dynamic behavior and adiabatic shearing formation of CP titanium. The experimental results showed that explosion hardening induced the gradient hardened microstructure with a depth of 2.6 mm in CP titanium. The explosion hardened specimens present enhanced static and dynamic compressive strengths, which was caused by grain refinement, the alpha-omega phase transition, and micro-defects' proliferation. The gradient deformation and gradient ASB occurred in explosion hardened specimen after dynamic loading, whereas the homogeneous deformation and a bipyramid-shaped adiabatic shear band were observed in untreated specimen. The ASBs were easier to nucleate, propagate, bifurcate and interact in the explosion hardened CP titanium during dynamic loading, especially in the shocked side due to the higher-density micro-defects. This was attributed that the omega phase particles and the proliferation of twinning/dislocations during explosion hardening promoted the dynamic recovery process during the nucleation stage of ASBs. The gradient microstructure in CP titanium with explosion hardening delayed the propagation of ASBs and cracks under dynamic loading.

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