Characterization of AZ91 magnesium alloy processed by cyclic contraction/expansion extrusion using the experimental and micromechanical cellular automaton finite element approach

被引:7
作者
Hatami Sadr, M. [1 ]
Jafarzadeh, H. [1 ]
机构
[1] Islamic Azad Univ, Tabriz Branch, Dept Mech Engn, Tabriz, Iran
关键词
Cyclic contraction; expansion extrusion; fine-grained structure; cellular automaton; discontinuous dynamic recrystallization; SEVERE PLASTIC-DEFORMATION; DYNAMIC RECRYSTALLIZATION; MICROSTRUCTURAL EVOLUTION; MECHANICAL-PROPERTIES; SIMULATION; BEHAVIOR; STEEL; AZ31; FLOW;
D O I
10.1177/1464420720944194
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The feasibility to fabricate ultra-fine-grained AZ91 Mg alloy is investigated with a newly presented severe plastic deformation method entitled cyclic contraction/expansion extrusion. In this method, an initial cylindrical AZ91 Mg billet is placed into a die and the moving punch causes the large deformations by extruding the material in two different regions entitled contraction and extrusion. The evolution of AZ91 microstructure and mechanical properties during cyclic contraction/expansion extrusion was studied through different experimental observations. The microstructure observations showed the ultra-fine-grained structure of AZ91 at the end of the third pass where the average grain size of 600 nm obtained from the initial value of 130 mu m. The tensile tests showed that the ultimate tensile strength, yield strength, hardness, and elongation of AZ91 cyclic contraction/expansion extrusion-processed samples are increased significantly. Discontinuous dynamic recrystallization has a main role in the grain refinement of Mg alloys during hot deformations. The evolution of grains in microlevel is analyzed by the cellular automaton finite element method in the DEFORM software environment. The macroscopic flow parameters including effective plastic strain, stain rate, and temperature were calculated in finite element. By tracing these data in defined domain of cellular automaton, the discontinuous dynamic recrystallization of material is analyzed through a devised cellular automaton finite element post-processing step. The imposed plastic strain and variation of dislocation density are the two main driven forces in discontinuous dynamic recrystallization of AZ91 samples during cyclic contraction/expansion extrusion processing. The experimentally observed grains and the cellular automaton finite element predicted microstructure were reasonably in good agreement.
引用
收藏
页码:1417 / 1430
页数:14
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