scholarly journals Strain Localization during Equal-Channel Angular Pressing analyzed by Finite Element Simulations

Author(s):  
Tobias Daniel Horn ◽  
Christian Bert Silbermann ◽  
Philipp Frint ◽  
Martin Franz-Xaver Wagner ◽  
Jörn Ihlemann

Equal-Channel Angular Pressing (ECAP) is a method used to introduce severe plastic deformation into a metallic billet without changing its geometry. In special cases strain localization occurs and a pattern consisting of regions with high and low deformation (so-called shear and matrix bands) can emerge. This paper studies this phenomenon numerically adopting two-dimensional finite element simulations of one ECAP pass. The mechanical behavior of aluminum is modeled using phenomenological plasticity theory with isotropic or kinematic hardening. The effects of the two different strain hardening types are investigated numerically by systematic parameter studies: While isotropic hardening only causes minor fluctuations in the plastic strain fields, a material with high initial hardening rate and sufficient strain hardening capacity can exhibit pronounced localized deformation after ECAP. The corresponding finite element simulation results show a regular pattern of shear and matrix bands. This result is confirmed experimentally by ECAP-processing of AA6060 material in a severely cold worked condition, where microstructural analysis also reveals the formation of shear and matrix bands. Excellent agreement is found between the experimental and numerical results in terms of shear and matrix band width and length scale. The simulations provide additional insights regarding the evolution of the strain and stress states in shear and matrix bands.

Metals ◽  
2018 ◽  
Vol 8 (1) ◽  
pp. 55 ◽  
Author(s):  
Tobias Horn ◽  
Christian Silbermann ◽  
Philipp Frint ◽  
Martin Wagner ◽  
Jörn Ihlemann

2014 ◽  
Vol 609-610 ◽  
pp. 495-499
Author(s):  
Guo Cheng Ren ◽  
Xiao Juan Lin ◽  
Shu Bo Xu

The microstructure and material properties of AZ31 magnesium alloy are very sensitive to process parameters, which directly determine the service properties. To explore and understand the deformation behavior and the optimization of the deformation process, the microstructure evolution during equal channel angular pressing was predicted by using the DEFORM-3D software package at different temperature. To verify the finite element simulation results, the microstructure across the transverse direction of the billet was measured. The results show that the effects strain and deformation temperatures on the microstructure evolution of AZ31 magnesium during ECAP process are significant, and a good agreement between the predicted and experimental results was obtained, which confirmed that the derived dynamic recrystallization mathematical models can be successfully incorporated into the finite element model to predict the microstructure evolution of ECAP process for AZ31 magnesium.


2010 ◽  
Vol 45 (17) ◽  
pp. 4682-4688 ◽  
Author(s):  
Eun Yoo Yoon ◽  
Ji Hoon Yoo ◽  
Seung Chae Yoon ◽  
Yong Keun Kim ◽  
Seung Chul Baik ◽  
...  

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